FPGA & CPLD
Products (6352)
5M80ZM64A5N - 64-Macrocell CPLD MAX V 1.8V 64-MBGA | Intel
The Intel 5M80ZM64A5N is a 64-macrocell CMOS flash-based Complex Programmable Logic Device (CPLD) from the MAX V family, housed in a 64-ball Micro FBGA (Fine-Pitch Ball Grid Array) package with 0.5 mm terminal pitch. It operates from a 1.8 V core supply, supports a maximum internal operating frequency of 118.3 MHz, and offers 30 user I/O pins for general-purpose logic integration. A CPLD (Complex Programmable Logic Device) is a non-volatile programmable logic device that combines multiple macrocell logic blocks with a programmable interconnect matrix. It belongs to the broader hierarchy of programmable logic devices (PLDs), which also include simple PLDs (SPLDs), FPGAs, and structured ASICs. Within the Intel portfolio, the MAX V family sits below the MAX II and MAX 10 CPLD series and is widely used for glue-logic, interface bridging, power-up sequencing, and I/O expansion in industrial and automotive systems. Key features of the 5M80ZM64A5N include 64 macrocells distributed across 4 logic array blocks (LABs), 1.8 V VCCINT core supply with 1.2 V to 3.3 V LVCMOS/LVTTL multi-voltage I/O support, in-system programmability via JTAG (IEEE 1149.1 boundary-scan), and an internal oscillator. The device integrates 8 Kbits of user flash memory (UFM) for non-volatile data storage, eliminating the need for an external EEPROM in many designs. AEC-Q100 automotive qualification makes this part well suited for vehicle electronic control units. Architecturally, the MAX V family uses a look-up-table (LUT)-based logic element that implements any 4-input combinational or registered function per macrocell. The non-volatile flash configuration cell provides instant-on behavior at power-up with no external boot PROM, simplifying board layout and reducing BOM cost. The 0.5 mm-pitch Micro FBGA package enables compact designs where board area is constrained. Typical applications include automotive body electronics and infotainment auxiliary logic, industrial control glue-logic between processors and peripherals, I/O expansion for microcontrollers, power-sequence controllers, LED display driving, and JTAG-based boundary-scan test access. The automotive-grade qualification allows deployment under hood and in cabin electronics. When designing with this device, observe the recommended decoupling scheme (one 0.1 uF capacitor per power pin placed within 100 mils of the pad) and follow Intel's IBIS models for signal-integrity simulation of the 1.8 V LVCMOS I/O. The internal oscillator and UFM block can offload timing-reference and parameter-storage tasks from the host MCU. This page synthesizes distributor pricing, AEC-Q100-grade drop-in alternatives, and practical design notes not found in the manufacturer datasheet, supporting engineers in selecting the right MAX V density variant for their application.
5M80ZM64C4N - MAX V CPLD 64 Logic Elements 64-MBGA | Intel / Altera
The Intel / Altera (formerly Altera) 5M80ZM64C4N is a low-power, non-volatile CPLD from the MAX V family, integrating 64 logic elements (LEs) and 64 macro cells in a compact 64-ball Micro FBGA (MBGA) package. The MAX V architecture combines a flash-backed configuration memory with a Look-Up Table (LUT) based logic fabric and a multi-volt core/IO structure that natively supports 1.8 V, 2.5 V, 3.3 V, and 5.0 V mixed-voltage operation. The "C4" speed grade provides approximately 7.5 ns maximum pin-to-pin logic delay, enabling glue-logic and I/O expansion up to roughly 184 MHz fMAX in commodity control applications. What is a CPLD? A Complex Programmable Logic Device (CPLD) is a non-volatile, instantly-on programmable logic device that sits between simple PAL/GAL devices and larger FPGAs. CPLDs use a coarse-grained AND-OR macro-cell fabric with on-chip flash or EEPROM configuration, so they power up in a known state with no external boot PROM. The MAX V family targets glue-logic, bus-interface bridging, power-sequencing, and I/O expansion roles where deterministic timing, instant-on behaviour, and long-term field-reprogrammability are required. Key differentiating features of the 5M80ZM64C4N include 64 macro cells / 64 LEs, 30 Kb of user flash memory, an integrated 8 Kb user SRAM, on-chip User Flash for customer data storage, support for JTAG (IEEE 1149.1) and in-system programmability, plus an 8-input LUT structure that gives surprisingly wide decode capability for a 64-LE part. The 1.8 V core with multi-volt I/O eliminates level shifters in mixed-voltage boards. The device is supplied in a 64-ball MBGA measuring only 4.5 mm × 4.5 mm with a 0.5 mm ball pitch. Technically, the MAX V CPLD uses a non-volatile flash configuration cell that loads into SRAM-based logic on power-up, providing instant-on operation. The 7.5 ns tPD1 timing is consistent across commercial and industrial temperature grades, and the device supports up to 79 user I/Os in the MBGA package. Internal global clock networks and per-pin output enable registers allow small state machines and registered I/O protocols to be implemented without external clock buffers. Typical applications for the 5M80ZM64C4N include I2C and SPI bus multiplexing, address decoding and ChipSelect generation in microcontroller systems, power-supply sequencing for multi-rail processors, LED driver control, I/O voltage translation (1.8/2.5/3.3/5 V), and replacement of multiple discrete 74-series logic gates. Designers also use it as a "reset and glue-logic brain" in industrial controllers where instant-on and field reprogrammability are valued over the larger logic capacity of an FPGA. Design consideration: the MBGA package requires careful PCB footprint design and reflow profile - hand-soldering is impractical. For prototype work, the MAX V device family also ships in TQFP and EQFP packages with the same JTAG chain, so firmware can be developed on a TQFP board and deployed on the MBGA version with no bitstream changes. This page synthesises distributor pricing, drop-in same-package alternatives, and practical design notes not collected in the manufacturer datasheet alone, helping engineers source and qualify a 5M80ZM64C4N replacement for both new designs and existing production boards.
5M80ZM64C5N - 64-Macrocell CPLD, 7.5 ns, 64-MBGA | Altera
Altera 5M80ZM64C5N is a non-volatile MAX V complex programmable logic device containing 64 macrocells, offering a 7.5 ns propagation-delay grade and up to 30 user I/Os in a 64-ball MBGA package. The verified listing identifies the device as IC CPLD 64MC 7.5NS 64MBGA and reports a maximum internal clock frequency of 118.3 MHz. These headline values position the part as a compact, non-volatile platform for glue logic, bus decoding, interface bridging, and control sequencing. A CPLD, or complex programmable logic device, is a digitally configured semiconductor that combines programmable logic blocks, a switch matrix, and non-volatile configuration memory. Within the programmable-logic hierarchy, a CPLD sits between small discrete logic devices and larger FPGAs. It generally provides predictable timing and instant-on configuration, making it useful where board-level logic must be available immediately after power-up without an external configuration memory. The 5M80ZM64C5N provides 64 macrocells and 30 user I/Os, with 7.5 ns logic timing and a listed 118.3 MHz internal frequency. Its non-volatile MAX V architecture retains programmed logic when power is removed. The 64-MBGA package conserves board area, but the fine-pitch BGA land pattern requires exact footprint, stencil, assembly, and inspection control. Device density and package resources should be validated against the target I/O count, logic utilization, and timing constraints. For engineering analysis, the key trade-off is architecture capacity versus deterministic deployment. Unlike a configuration-memory-based FPGA flow, a CPLD typically powers up with its programmed interconnect active and does not need a separate boot flash. This simplifies control and interface circuits, although the 64-macrocell capacity is much smaller than that of a modern FPGA. Designers should reserve pins for required power, configuration, clock, and JTAG functions rather than assuming every package terminal is a general-purpose user I/O. Typical applications include industrial control, point-of-sale equipment, communications infrastructure, instrumentation, and legacy digital-system refreshes. The device can implement decode, qualification, state-machine, and bus-interface logic. Its non-volatile operation is especially useful in systems that require immediate logic availability after reset or controlled deterministic startup behavior. Before layout, verify the complete 64-ball pin assignment, supported I/O standards, supply requirements, and timing specifications in the manufacturer datasheet. A successful design also requires conservative state-machine timing, clean clock distribution, and review of unused-ball connections. This page consolidates verified sourcing details, package and pinout limits, and cross-reference constraints to support procurement and engineering review.
5M80ZM64I5N - 64-LE CPLD 80 LEs MAX V Industrial | Intel
The Intel (formerly Altera) 5M80ZM64I5N is a low-power, non-volatile Complex Programmable Logic Device (CPLD) from the MAX V family, integrating 80 logic elements and 64 macro cells in a compact 64-pin Micro FBGA (MBGA) package. It operates with a core voltage of 1.8V, an I/O supply range that supports common 1.5V/1.8V/2.5V/3.3V LVCMOS/LVTTL interfaces, and a maximum internal operating frequency of approximately 118.3 MHz with a 7.5 ns pin-to-pin logic delay. What is a CPLD? A Complex Programmable Logic Device is a non-volatile programmable logic device that bridges the gap between discrete glue logic and FPGAs, providing fast, deterministic parallel logic with instant-on behavior. CPLDs sit in the hierarchy of programmable logic devices (PLD -> CPLD -> FPGA), are characterized by non-volatile configuration memory, predictable timing, and high-drive I/O, and are commonly used as I/O expansion, bus bridging, interface glue, and power-sequencing logic in industrial, automotive, and consumer systems. Key features of the 5M80ZM64I5N include 80 logic elements (64 macro cells), up to 79 user I/O pins, an on-chip 8 Kbit Flash configuration memory block with built-in JTAG and ISP support, MultiVolt I/O supporting mixed-voltage interfacing, and low static power consumption. The device is specified over the industrial temperature range of -40C to +100C (I-temp grade) and is housed in a 4.5 mm x 4.5 mm 64-ball MBGA package that supports surface-mount assembly. Architecturally, the 5M80ZM64I5N uses a non-volatile flash-based logic array with a global interconnect, providing fast input-to-output timing (tPD = 7.5 ns) and zero in-system configuration delay. Each macro cell contains a programmable AND/OR array feeding a flip-flop with clear/preset, allowing compact implementation of state machines, decoders, and glue logic without external memory. Typical applications include I/O expansion and voltage translation for microcontrollers and ASICs, bus-interface bridging (e.g., parallel-to-SPI glue logic), power-sequencing controllers, LED-display and human-machine interface (HMI) scanning logic, portable medical and industrial sensor-front-end logic, and replacement of multiple discrete 74-series logic ICs in space-constrained designs. The combination of small BGA footprint and low power also suits battery-powered industrial sensors. When designing with the 5M80ZM64I5N, follow the Quartus II / Quartus Prime design flow, plan I/O bank voltages against your system rails, and verify signal integrity on the 0.8 mm-pitch BGA using escape routing rules. The I-temp grade (I5N suffix) provides reliable operation across the full -40C to +100C industrial range. This page synthesizes distributor pricing, drop-in same-family alternatives from the Site MPN list, and practical design notes that supplement the manufacturer datasheet with information tailored to engineers selecting a 64-ball CPLD for new designs and legacy board refresh.
5M80ZM68A5N - MAX V CPLD 64 Macrocell 52 I/O | Intel | Auto Grade
The Intel 5M80ZM68A5N is a member of the MAX V family of low-power, non-volatile Complex Programmable Logic Devices (CPLDs), delivering 64 macrocells with 52 user I/Os in a 68-ball Micro FBGA (MBGA) package. The device operates from a single 1.8V core supply, supports flash-based in-system programmability (ISP), and is screened to AEC-Q100 standards for automotive applications, with an operating temperature range of -40C to +105C. A CPLD (Complex Programmable Logic Device) is a non-volatile programmable logic device that sits hierarchically below FPGAs in the programmable logic taxonomy (CPLD -> programmable logic -> semiconductor IC). MAX V CPLDs use a flash-backed Look-Up Table (LUT) / Product Term (PT) architecture combined with a multi-volt I/O bank, providing instant-on operation at power-up without external boot memory. Compared with SRAM-based FPGAs, CPLDs like the MAX V family offer deterministic propagation delay (approximately 14 ns per macrocell in this part), lower static power, and simplified JTAG-only configuration. Key features of the 5M80ZM68A5N include 64 macrocells (~128 logic elements), 52 user I/O pins, in-system programmability via JTAG, built-in boundary scan support, and ultra-low standby current of 25 uA typical. The internal flash configuration memory eliminates the need for external boot PROMs, reducing board complexity and BOM cost. Multi-volt I/O supports interfacing with 1.5V, 1.8V, 2.5V, 3.3V, and LVTTL/LVCMOS logic families. The MAX V architecture is built on a 0.18 um CMOS process with non-volatile flash cells storing the configuration. The 5M80ZM68A5N supports internal pull-up resistors, fast propagation delay (~14 ns pin-to-pin), and a JTAG interface compliant with IEEE 1149.1 boundary scan. The flash-based configuration means the device starts in the user-defined logic state within microseconds of power-up, making it ideal for control-plane applications where SRAM FPGAs would require too long a configuration time. Typical applications include automotive body electronics, industrial control, I/O expansion, bus bridging, and glue-logic replacement for legacy PLDs. The combination of automotive-grade screening, low power, and instant-on operation makes this part particularly well-suited to under-hood and body-control modules. When designing with this device, follow Intel's MAX V pin connection guidelines: connect all VCCINT/VCCIO pins to decoupling, leave unused JTAG and configuration pins tied per the datasheet, and verify thermal performance using the package theta_JA. The flash programming algorithm must be applied via the Altera/Intel USB-Blaster or compatible JTAG programmer. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet alone.
5M80ZM68C4N - MAX V CPLD, 80 LEs, 68-ball MBGA | Intel
The Intel (formerly Altera) 5M80ZM68C4N is a member of the MAX V family of low-cost, low-power Complex Programmable Logic Devices (CPLDs), delivering 80 logic elements (LEs) in a 68-ball Micro FineLine BGA (MBGA) package with a commercial temperature grade and a -4 speed grade. The MAX V family uses a non-volatile flash configuration cell, which makes the device instant-on at power-up with no external boot PROM required and enables board-level space savings. A CPLD (Complex Programmable Logic Device) is a non-volatile programmable logic device that sits between discrete glue logic and FPGAs in the digital design hierarchy: it provides deterministic timing, multi-volt I/O bridging, and instant-on behavior for control-plane functions. Within programmable logic, the hierarchy is: CPLD -> programmable logic device (PLD) -> logic IC -> semiconductor. The MAX V family targets glue-logic, I/O expansion, and power-sequencing functions in systems that need reliability and fast wake-up. Key features include 80 logic elements, 160 maximum user I/O pins (device-dependent), internal flash configuration memory, 1.8 V core operation with multi-voltage I/O support (1.2 V to 3.3 V LVCMOS/LVTTL), a MultiVolt core that interfaces to 1.5 V, 1.8 V, 2.5 V, and 3.3 V logic, and a JTAG-based IEEE 1149.1 boundary-scan / ISP interface. The device is built on a 0.30 um CMOS process with six layers of metal interconnect, and consumes as little as 2.5 mW static power. Typical applications include I/O expansion and voltage translation between processors and peripherals, power-up sequencing and reset distribution, board-level glue logic replacement, bus decoding and address mapping, LED control, and high-speed control interfaces in industrial, consumer, and communications equipment. The commercial temperature range (0C to +85C) makes it suitable for indoor enclosures. When designing with this device, ensure the JTAG chain matches the Quartus II programmer expectations and that the I/O bank supply pins are properly decoupled. The flash-backed configuration eliminates the boot PROM footprint and improves board security because the bitstream cannot be intercepted during load. This page synthesizes distributor pricing, same-package alternatives from the MAX V family, and practical design notes not always present in the manufacturer datasheet.
5M80ZM68C5N - 64-Logic Element MAX V CPLD, 7.5ns, 68-MBGA | Intel
The Intel 5M80ZM68C5N is a 64-logic-element member of the MAX V family of low-power, non-volatile Complex Programmable Logic Devices (CPLDs), housed in a 68-ball Micro FineLine BGA (MBGA) package. It delivers 7.5 ns pin-to-pin logic delay with up to 300 MHz internal operation, 64 macrocells, and 79 user I/O pins in a 5x5 mm footprint, targeting glue-logic and bus-bridging tasks in cost-sensitive industrial, communications, and consumer designs. What is a CPLD? A Complex Programmable Logic Device is a non-volatile programmable logic IC that sits hierarchically below FPGAs in the programmable logic family (CPLD -> programmable logic -> logic IC -> semiconductor). CPLDs use flash- or EPROM-based configuration cells that retain the design at power-up with zero boot time, making them ideal for power-on sequencing, level shifting, and interface bridging where FPGAs would be over-specified. The MAX V series specifically targets low static power (~25 µA typical) with an internal oscillator and JTAG in-system programmability. Key features of the 5M80ZM68C5N include 64 logic elements / macrocells, 79 maximum user I/O, 7.5 ns Tpd (fastest speed grade), 1.8 V core with multi-voltage I/O support (1.2 V to 3.3 V LVCMOS/LVTTL), and on-chip flash configuration memory eliminating external boot PROMs. The device integrates a user flash memory block (8 Kbits) for customer data storage and a JTAG-driven in-system programmability interface that simplifies factory programming. The MAX V architecture uses a multi-volt I/O bank structure with eight I/O banks, each independently configurable to 1.2 V, 1.5 V, 1.8 V, 2.5 V, or 3.3 V. This eliminates external level shifters when bridging between legacy 3.3 V peripherals and modern 1.8 V processors. The non-volatile flash cells deliver zero-configuration-latency start-up in microseconds, a key reason MAX V displaces small FPGAs in boot-critical applications. Typical applications include power-on reset sequencing for ASICs and processors, I/O expansion via I2C/SPI-to-parallel bridges, bus-width translation between 8-bit and 16/32-bit peripherals, LED and segment display control, and glue logic replacement of multiple 74-series TTL gates in compact PCB designs. The MBGA-68 footprint is also suited to space-constrained handheld products. Design consideration: the 'C5' speed grade denotes the 7.5 ns commercial-temperature (0 °C to +85 °C) variant; the 'I5' speed grade is identical electrically but specified for industrial temperature (-40 °C to +100 °C). Use the industrial part for outdoor or factory-floor designs. The MBGA package requires careful PCB layout with microvia or via-in-pad technology for reliable BGA assembly. This page synthesizes distributor pricing, drop-in alternatives within the MAX V family, and practical design notes not found in the standalone datasheet.
5M80ZM68I5N - 64 Macrocell MAX V CPLD, 68-BGA, Industrial | Intel
The Intel (formerly Altera) 5M80ZM68I5N is a 64-macrocell member of the MAX V family of low-cost, low-power, non-volatile Complex Programmable Logic Devices (CPLDs), delivered in a 68-ball FineLine BGA package with industrial temperature grade (-40C to +100C). The device combines 7.5 ns pin-to-pin logic delay with 118.3 MHz maximum operating frequency and supports a 1.8 V core supply (1.71 V to 1.89 V) along with multi-voltage I/O standards including 1.2 V, 1.5 V, 1.8 V, 2.5 V, and 3.3 V LVCMOS/LVTTL. A Complex Programmable Logic Device (CPLD) is a non-volatile, instant-on programmable logic IC that integrates multiple macrocell-based logic blocks (LABs) with a programmable interconnect matrix. CPLDs sit alongside FPGAs in the broader programmable logic hierarchy (programmable logic device -> CPLD -> programmable logic -> digital IC) and are typically chosen over FPGAs for glue-logic, bus-interface bridging, power-sequencing, and high-drive I/O expansion tasks where deterministic timing and zero-configuration-boot behavior matter more than raw logic density. Key features of the 5M80ZM68I5N include 64 macrocells across 4 logic array blocks, 160 user-flash-memory bits for user-defined storage, an internal oscillator, JTAG (IEEE 1149.1) and in-system programmability via the Altera/Intel Quartus Prime design tool, and a user-mode flash block for customer IP or revision identification. The device integrates a voltage regulator that derives the 1.8 V core from a user-supplied VCCIO or VCCINT rail, simplifying board power design. Architecturally, the MAX V CPLD uses a classic AND-OR PLA fabric with each macrocell containing a programmable AND array, a flip-flop, product-term steering, and a selectable I/O standard. The 68-BGA package exposes up to 52 user I/O pins (52-MBGA variants differ in I/O count) and offers very small board footprint compared to equivalent TQFP-100 CPLDs. Typical applications include I/O expansion and level shifting between 1.8 V MCUs and 3.3 V peripherals, bus-interface bridging (for example I2C, SPI, UART, or parallel memory glue), power-sequence and reset-distribution controllers in industrial control boards, and consumer/automotive infotainment subsystems where instant-on non-volatile logic is required at low cost. When designing with this device, allocate a 0.1 uF + 1 uF decoupling network on every VCCIO bank and place the JTAG TMS/TCK/TDO/TDI chain within 75 mm of the BGA balls to keep programming reliable. Use Quartus Prime 15.1 or later with the MAX V device support installed to generate JIC/POF programming files.
5M80ZT100A5N - 64-Macrocell MAX V CPLD, 100-TQFP, 1.8V | Altera
The Altera (Intel) 5M80ZT100A5N is a 64-macrocell member of the MAX V family of low-power, non-volatile Complex Programmable Logic Devices (CPLDs), housed in a 100-pin Thin Quad Flat Pack (TQFP) package. It offers a pin-to-pin propagation delay of 7.5 ns and an internal oscillator frequency support of 118.3 MHz on the global clock network, making it well suited for high-speed control-plane glue-logic that previously required multiple 74-series discrete devices. A CPLD (Complex Programmable Logic Device) is a non-volatile programmable logic device that bridges the gap between simple PLDs and larger FPGAs. In the broader programmable logic taxonomy, CPLDs sit between PAL/GAL (small, simple) and FPGAs (large, register-rich, volatile SRAM-based). MAX V CPLDs use a flash-based configuration cell that retains bitstream without an external boot PROM, which simplifies board design and reduces BOM cost versus SRAM-based FPGAs. The 5M80ZT100A5N therefore occupies a 'low-density, instant-on, deterministic-timing' niche well above discrete 74HC logic but below the smallest Cyclone FPGA. Key features include 64 logic macrocells (each containing a 36-input product term and one flip-flop), 80 user I/O pins on the TQFP-100 package, an integrated 1.8 V core with 1.8 V/2.5 V/3.3 V multi-voltage I/O support through bank-level VCCIO rails, and an embedded user flash memory block (UFM) of 8 Kbits that can be used for configuration storage or general-purpose non-volatile data. The device supports in-system programmability via JTAG (IEEE 1149.1) and operates across the industrial -40 C to +125 C junction temperature range. The 1.8 V core core voltage combined with the legacy 3.3 V/2.5 V I/O bank options makes the 5M80ZT100A5N a practical 'bridge' between modern low-voltage processors and older peripheral ICs. The 5M80ZT100A5N's 7.5 ns tPD and deterministic 118.3 MHz fMAX suit it for bus-interface decoding, address latch/buffer logic, asynchronous state machines, and small FIFO glue. The MAX V architecture uses a uniform interconnect matrix with predictable routing delays, so timing closure does not require place-and-route iteration as with FPGAs - timing is largely data-sheet-driven. Typical applications include industrial control boards (sensor aggregation, motor-driver interface decoding), automotive body-electronics modules (AEC-Q100 qualified variants exist in this family), consumer-electronics glue logic between ASSPs and I/O connectors, and any system requiring instant-on, non-volatile logic with sub-10 ns decode paths. A common pattern is replacing 4-8 discrete 74-series packages with a single 5M80ZT100A5N to free PCB area and reduce assembly cost. When designing with this part, choose VCCIO per bank based on the connected peripherals (1.8 V, 2.5 V, or 3.3 V), connect JTAG TMS/TCK/TDO/TDI to a header for in-system programming, and provide a clean 1.8 V core supply (VCCINT) with at least one 0.1 uF decoupling capacitor per supply pin. The Quartus II / Quartus Prime toolchain generates the JEDEC programming file. Note that MAX V devices are mature - newer MAX 10 / MAX II families may be considered if higher logic density is needed, but they are not pin-compatible with this TQFP-100 footprint.
5M80ZT100C4N - MAX V 80 LE CPLD 7.5ns 64MC TQFP-100 | Intel
The Intel 5M80ZT100C4N is a MAX V family Complex Programmable Logic Device (CPLD) with 80 logic elements, 64 macrocells, and a 7.5 ns pin-to-pin logic delay, housed in a 100-pin TQFP (T100) package. It is fabricated on a low-power 0.18 µm flash process and targets glue-logic, I/O expansion, and bus-bridging functions in industrial, consumer, and communications equipment. A CPLD (Complex Programmable Logic Device) is a non-volatile programmable logic device that sits hierarchically between simple SPLDs (Simple PLDs like PAL/GAL) and large FPGAs (Field Programmable Gate Arrays). CPLDs offer instant-on configuration from on-chip flash, deterministic timing with predictable pin-to-pin delays, and high fan-in macrocell architecture - making them ideal for control-plane logic, address decoding, and peripheral interfacing rather than data-path DSP. Within the power management and board-level design hierarchy, CPLDs often replace discrete 74-series logic, saving board area and BOM cost. Key features include 80 logic elements, 64 macrocells, 4 global clocks, a built-in 8 Kbit user flash memory block, on-chip voltage regulator supporting 1.8 V/2.5 V/3.3 V I/O standards, and MultiVolt core support allowing mixed-voltage operation. The device operates from a single 1.8 V core supply with I/O banks configurable to 1.5 V, 1.8 V, 2.5 V, or 3.3 V, simplifying interfacing with legacy 5 V-tolerant buses through level shifters. The 5M80ZT100C4N uses a non-volatile flash-based configuration cell so it behaves like an ASIC at power-up with zero configuration time, in contrast to SRAM-based FPGAs that require external boot memory. The 100-pin TQFP package exposes 79 user I/O pins and supports LVCMOS, LVTTL, PCI, and SSTL I/O standards, enabling direct connection to microprocessors, memory buses, and parallel peripherals. Typical applications include I/O expansion and level translation in industrial controllers, address decoding in legacy 8051/ARM designs, power-sequencing logic in telecom line cards, and LED display multiplexing in signage. The instant-on flash architecture is particularly suited to safety-critical systems where FPGA boot time is unacceptable. When designing with this device, observe the I/O bank voltage constraints - mixing 3.3 V and 1.8 V signals requires careful VCCIO planning. Use Quartus II or the Intel Quartus Prime Lite Edition for synthesis; JTAG programming via the dedicated 4-wire JTAG port enables in-system reconfiguration without external boot devices. This page synthesizes distributor pricing, drop-in alternatives from the MAX V family, and practical design notes not found in the standalone datasheet - giving engineers a single reference for sourcing, replacement, and layout decisions.
5M80ZT100C5N - MAX V 80LE CPLD, 64 Macrocells, TQFP-100 | Intel
The Intel (formerly Altera) 5M80ZT100C5N is a 80-logic-element (LE) member of the MAX V family of low-power, non-volatile Complex Programmable Logic Devices (CPLDs), supplied in a 100-pin TQFP (T100) package with 79 user I/Os and a 7.5 ns pin-to-pin delay. It integrates 64 macrocells, 8 Kbits of user flash memory, and an internal oscillator, offering a single-chip glue-logic solution for bus bridging, I/O expansion, and power-up sequencing tasks. A CPLD (Complex Programmable Logic Device) is a non-volatile programmable logic device that provides instant-on deterministic logic with predictable timing, sitting hierarchically between simple PAL/GAL devices and higher-density FPGAs in the programmable logic taxonomy. CPLDs are commonly used as interface bridges, configuration managers, and peripheral decoders where low standby power, fast I/O response, and high drive strength are required. The MAX V family specifically targets low quiescent current (typically 25 uA standby) and 1.8 V core operation with multi-voltage I/O support. Key specifications include an industrial operating range of 0C to +85C, in-system programmability via JTAG, support for hot-socketing and power sequencing, and operation from a single 1.71-1.89 V core supply with I/O banks tolerant of 1.2 V through 3.3 V LVCMOS/LVTTL. The device uses a flash-based configuration cell that retains programming without external memory, eliminating boot-time delays. Architecturally, the 5M80ZT100C5N uses a Logic Array Block (LAB) of 16 macrocells combined with a global interconnect matrix, providing fast propagation delays and deterministic timing for glue-logic functions. The 100-pin TQFP footprints are pin-compatible across the MAX V family densities (5M40Z/5M80Z/5M160Z/5M240Z/5M570Z), enabling upward migration without PCB rework. Typical applications include I/O expansion and level translation in industrial control boards, bus bridges between microcontrollers and legacy peripherals, power-up and reset sequencing in multi-rail systems, LED display driving, and PAL/GAL replacements where deterministic timing and non-volatility are critical. Designers migrating from discrete 74-series glue logic frequently adopt the 5M80ZT100C5N to consolidate multiple small-scale logic functions into a single programmable device. When designing with this device, ensure the JTAG chain matches the Quartus Prime programmer expectations and provide proper decoupling on each VCCIO bank. Designers should also confirm that the design's I/O voltage is supported by the bank's VCCIO and use the Quartus II / Quartus Prime MAX V device support file to program the device via JTAG or ByteBlaster. This page synthesizes distributor stock levels, drop-in compatible same-package alternatives, and practical design notes not found in the manufacturer datasheet - enabling engineers to select and source the 5M80ZT100C5N with confidence.
5M80ZT100I5N - MAX V 80LE CPLD 7.5ns TQFP-100 | Intel
The Intel 5M80ZT100I5N is a member of the MAX V family of low-power, non-volatile Complex Programmable Logic Devices (CPLDs) from Intel (formerly Altera), delivering 80 Logic Elements (LEs) in a 100-pin TQFP package with 64 user I/O pins. It features a 7.5 ns pin-to-pin logic delay and operates from a single 1.8 V core supply (1.71 V to 1.89 V), with multi-voltage I/O support (1.2 V/1.5 V/1.8 V/2.5 V/3.3 V) on its LVCMOS/LVTTL/LVDS banks. The -I5N suffix denotes the industrial temperature grade (-40 °C to +100 °C). A CPLD (Complex Programmable Logic Device) is a non-volatile, flash-based programmable logic device that sits between discrete logic gates (74-series) and FPGAs. CPLDs offer deterministic, near-zero standby power, instant-on configuration, and predictable timing that makes them ideal for glue logic, bus interfacing, and control-plane decoding. Within the programmable logic hierarchy, CPLDs are positioned above discrete logic and below small FPGAs: FPGA > CPLD > PAL/GAL > 74-series discrete logic. The MAX V family targets low-cost, low-power, high-volume designs. Key features include 80 Logic Elements (~160 equivalent macrocells), 64 user I/O, 1.8 V core supply, multi-voltage I/O support, internal flash configuration memory, JTAG and ISP (in-system programmability) via IEEE Std 1149.1, plus an analog phase-locked loop (PLL) for clock management. The non-volatile flash architecture provides zero-power standby and sub-100 µs instant-on wake-up, eliminating the external boot PROM required by SRAM FPGAs. The MAX V architecture uses a MultiVolt core, Look-Up Table (LUT)-based logic array blocks (LABs) wired through a global interconnect, and a flash-backed configuration cell that survives power cycles. Each LAB contains ten LEs plus local routing, while the UFM (User Flash Memory) block adds up to 8 Kbits of user-accessible flash for trimming tables or serial numbers. Compared to the older MAX II family, MAX V offers lower static power and improved I/O performance at a similar density point. Typical applications include I/O expansion and voltage translation for microcontrollers, address decoding for memory and peripheral buses, power-up and power-rail sequencing in multi-rail systems, board-level glue logic replacement, and low-density control state machines in industrial, automotive, and consumer products. The industrial temperature grade also supports factory and outdoor edge nodes. When designing with this device, observe the MultiVolt I/O bank constraints - each bank shares a single VCCIO rail, so mixed-voltage buses must be grouped carefully. Place decoupling capacitors (0.1 µF + 1 µF) within 50 mil of every VCC/VCCIO pin, and use the JTAG chain for production programming via the Quartus II Programmer. The 'I' industrial temperature grade requires careful thermal derating above 85 °C ambient. This page synthesizes distributor pricing, pin-compatible alternatives from the same MAX V family, and practical board-level design guidance not always surfaced in the manufacturer datasheet.
A3P030-2QNG48 - ProASIC3 FPGA 30K Gates | Microchip Technology
The Microchip Technology A3P030-2QNG48 is a ProASIC3 Field Programmable Gate Array (FPGA) with 30,000 system gates, 768 logic modules, and 34 user I/Os, housed in a 48-pin VQFN (QNG) package with exposed pad. It operates at a maximum internal frequency of 310 MHz and is fabricated on 130nm flash-based CMOS technology, requiring a 1.5V core supply. A Field Programmable Gate Array (FPGA) is an integrated circuit that can be configured by the customer after manufacturing to implement any digital logic function. Unlike fixed-function ASICs, FPGAs contain an array of programmable logic blocks and interconnects that can be reprogrammed to implement complex digital systems. The ProASIC3 family is a flash-based FPGA, meaning configuration is stored in non-volatile flash memory, allowing instant-on operation and secure design protection without external boot memory. Key features of the A3P030-2QNG48 include 30K system gates, 768 logic modules (equivalent to 330 logic elements), 34 user I/Os, and support for multiple I/O standards including LVCMOS, LVTTL, and PCI. The device offers 1Kbits of FlashROM for non-volatile data storage and is reprogrammable, enabling design updates in the field. The 48-pin VQFN package measures 6x6 mm with a 0.4 mm pitch, providing a compact solution for space-constrained applications. The ProASIC3 architecture uses a flash-based switch fabric that eliminates the need for external configuration PROMs, reducing system cost and board space. The device supports partial reconfiguration and has built-in security features including AES-128 bitstream encryption and a device lock to prevent reverse engineering. The 130nm process technology balances performance with low power consumption, making it suitable for battery-powered and thermally constrained designs. Typical applications for the A3P030-2QNG48 include industrial control, communications interfaces, motor control, and sensor signal processing. Its low density and small footprint make it ideal for glue logic, bus bridging, and state machine implementations where a full-size FPGA would be overkill. The 34 I/Os can interface with various peripherals and memory devices, providing flexible system integration. When designing with this device, ensure proper decoupling of the 1.5V core supply and 2.5V/3.3V I/O supplies. The exposed pad must be soldered to the PCB ground plane for thermal management and electrical grounding. The device supports JTAG programming and in-system programming via the SPI interface, simplifying manufacturing and field updates. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet, providing engineers with a comprehensive resource for evaluating the A3P030-2QNG48 in their designs.
A3P030-2QNG48I - ProASIC3 Flash FPGA 30K Gates | Microchip
The Microchip Technology (Microsemi) A3P030-2QNG48I is a flash-based ProASIC3 FPGA offering 30K system gates, 330 logic elements (VersaTiles), and 34 user I/Os in a 48-pin VFQFN exposed-pad (QNG48) package, rated for industrial temperatures of -40C to +85C with speed grade 2. A flash-based FPGA is a field-programmable gate array whose configuration is stored in on-chip non-volatile flash memory rather than an external configuration ROM. Within the programmable logic hierarchy, the A3P030 sits at the low end of the FPGA family tree, below mid-density and high-density FPGAs and far above simple CPLDs, making it a single-chip, low-cost programmable solution for glue logic, control, and interface bridging tasks. Key features include instant-on, live-at-power-up operation because the flash fabric is inherently non-volatile, eliminating the external boot device required by SRAM FPGAs. The 1.5V core with 130nm flash process delivers up to 310 MHz internal system performance, while the small 7x7 mm QFN footprint suits space-constrained boards. Security features protect the design from readback, and full reprogrammability supports in-field updates. The ProASIC3 architecture uses a Sea-of-Tiles fabric of VersaTiles, each configurable as logic, arithmetic, or memory elements, connected through a hierarchical routing structure. Embedded flash and optional soft ARM support extend capability beyond pure glue logic. I/O banks support popular single-ended standards, and the fabric is qualified across industrial temperature ranges. Typical applications include portable and handheld instrument control logic, industrial automation interface bridging, power-on sequencing and system supervision, and replacement of multiple discrete ASSP or CPLD devices in cost-sensitive designs where a single-chip flash FPGA reduces total cost of ownership. Design consideration: plan 1.5V core supply sequencing and adequate QFN thermal/electrical grounding through the exposed pad, and verify I/O bank voltage assignment in Libero SoC before board layout. This page synthesizes distributor pricing, drop-in same-family alternatives, and practical design notes not found in the manufacturer datasheet, with pricing referenced as of 2026-08-31.
A3P030-2QNG68 - ProASIC3 FPGA 30K Gates 68-QFN | Microchip
The Microchip (Microsemi/Actel) A3P030-2QNG68 is a ProASIC3 flash-based FPGA with 30K system gates, 310 MHz system performance, 49 user I/O, and 1.5V core operation, housed in a 68-pin VFQFN exposed-pad package. The -2 speed grade and flash programming fabric make it a single-chip, non-volatile solution for low-density logic integration. A flash-based FPGA is a field-programmable gate array whose configuration is stored in on-chip flash cells rather than an external configuration device. Within the programmable logic hierarchy, the ProASIC3 family sits under Microchip's low-density, non-volatile FPGA portfolio, positioning it above CPLDs in gate capacity while avoiding the configuration PROM required by SRAM FPGAs. Key features include 30,000 system gates (330 logic elements per distributor listings), 310 MHz maximum system performance in the -2 speed grade, single 1.5V core supply, and instant-on operation because configuration data resides in on-chip flash. The 68-VFQFN exposed-pad package (7x7 mm class) provides a small footprint with thermal dissipation through the pad, and 49 user I/O support both 3.3V and lower-voltage I/O banks for mixed-voltage board designs. Technologically, ProASIC3 uses a 130nm flash process with fine-grained VersTile logic architecture. Because the fabric is live at power-up, designs requiring immediate control-plane or glue-logic function do not need a host microcontroller to load bitstreams, improving system reliability and boot behavior versus SRAM-based FPGAs. Reprogrammability in-system supports field updates without changing hardware. Typical applications include industrial control and automation glue logic, portable and space-constrained consumer designs, power sequencing and reset management, bridge and interface conversion, and secure single-chip designs where bitstream external storage is undesirable. Design considerations: the 1.5V core rail must be sequenced and decoupled per the manufacturer datasheet, and the exposed pad must be soldered to a grounded thermal land for reliable operation. Verify I/O bank voltage assignments before layout because QFN pinout is fixed. This page synthesizes distributor pricing, drop-in alternatives, engineering design notes, and sourcing data not found in the manufacturer datasheet.
A3P030-2QNG68I - ProASIC3 Flash FPGA 30K Gates | Microchip
The Microchip (Actel/Microsemi) A3P030-2QNG68I is a ProASIC3 flash-based FPGA delivering 30,000 system gates, 49 user I/Os, and up to 310 MHz system performance in a 68-pin VFQFN exposed-pad package operating from a 1.5V core supply. Manufactured on a 130nm flash process, it is an industrial-temperature (I suffix) grade-2 speed device. A flash-based FPGA is a type of field-programmable gate array that stores its configuration in on-chip flash memory cells rather than volatile SRAM. This places the ProASIC3 family in the broader hierarchy of programmable logic: FPGA -> programmable logic device -> digital IC -> semiconductor. Because configuration is non-volatile, the device powers up instantly without an external configuration PROM or boot controller, making it a single-chip solution for space-constrained systems. Key features include 330 logic elements (LEs), flash-based LiveField reprogrammability, single-supply 1.5V core operation, small-footprint VFQFN packaging, and optional soft ARM support as noted in the ProASIC3 family datasheet. The ultra-low-density class of the device targets glue logic, control-plane functions, and power-up sequencing tasks that previously used CPLDs or discrete logic. Technically, the A3P030 uses Actel's proprietary flash switch technology, which combines the non-volatility of antifuse devices with the reprogrammability of SRAM FPGAs. The 130nm process yields low static power, and the exposed-pad QFN provides good thermal and ground performance for a small 8x8 mm-class footprint. Typical applications include industrial automation control, portable and battery-powered instruments, bridge logic between processors and peripherals, power sequencing controllers, and secure single-chip logic where bitstream volatility would be a liability. A key design consideration is I/O budget: with only 49 user I/Os available in the 68-pin package, pin mapping should be validated early in Libero SoC before routing commitment. This page synthesizes distributor availability, drop-in family alternatives, and practical design notes not consolidated in the manufacturer datasheet.
A3P030-2VQG100I - ProASIC3 FPGA, 30K Gates | Microchip
The Microchip Technology A3P030-2VQG100I is a low-density flash-based FPGA from the ProASIC3 family, offering 30,000 system gates, 330 logic elements, and 77 user I/Os in a 100-pin VQFP package. It operates from a 1.5V core supply and supports system performance up to 310 MHz, making it a single-chip, reprogrammable solution for cost-sensitive applications. A Field Programmable Gate Array (FPGA) is an integrated circuit that can be configured by the customer after manufacturing to implement arbitrary digital logic functions. Unlike fixed-function ASICs, FPGAs contain programmable logic blocks and interconnects that can be reconfigured to implement complex digital systems. The ProASIC3 family uses flash-based configuration, which retains the design even when power is removed, providing instant-on capability and inherent security against reverse engineering. Key features of the A3P030-2VQG100I include 30K system gates, 330 logic elements, 77 user I/Os, and a 1.5V core voltage. The device supports up to 310 MHz system performance and is offered in a 100-pin VQFP package with 0.5mm pitch. It is lead-free and RoHS compliant, with an operating temperature range of -40°C to +85°C, making it suitable for industrial environments. The ProASIC3 architecture is based on a flash-based switch fabric that provides non-volatile, low-power operation. Unlike SRAM-based FPGAs, it does not require an external configuration device, reducing system cost and board space. The device also includes advanced features such as clock conditioning, PLLs, and support for multiple I/O standards, enabling flexible system integration. Typical applications include industrial control, automotive electronics, communications infrastructure, and consumer electronics. The low density and small footprint make it ideal for glue logic, bus interfacing, and control applications where a full-sized FPGA would be overkill. The 77 I/Os provide ample connectivity for peripheral interfaces. When designing with this device, ensure proper decoupling of the 1.5V core supply and follow the recommended power-up sequencing. The flash-based configuration eliminates the need for external boot memory, simplifying the design and reducing BOM cost. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet, providing engineers with a comprehensive resource for evaluating the A3P030-2VQG100I.
A3P030-QNG48I - 30K Gate ProASIC3 FPGA | Microchip
The Microchip A3P030-QNG48I is a low-density, flash-based FPGA from the ProASIC3 family, offering 30,000 system gates and 34 user I/Os in a 48-pin QFN package. It operates over the industrial temperature range of -40°C to +100°C and supports core voltages of 1.5V, making it suitable for a wide range of embedded applications. An FPGA (Field-Programmable Gate Array) is an integrated circuit that can be configured by the customer after manufacturing to implement custom digital logic functions. Unlike fixed-function ASICs, FPGAs offer reprogrammability, allowing designers to iterate on designs without costly mask changes. The ProASIC3 family is known for its flash-based configuration, which provides instant-on capability, low power consumption, and high security against reverse engineering. Key features of the A3P030-QNG48I include 30,000 system gates, 34 user I/Os, and support for multiple I/O standards including LVCMOS, LVTTL, and PCI. It also features 1 kbit of FlashROM for non-volatile storage, an on-chip PLL for clock management, and a JTAG interface for programming and boundary-scan testing. The device is RoHS compliant and lead-free, meeting modern environmental standards. Technically, the ProASIC3 architecture uses a flash-based switch matrix that retains configuration data even when power is removed, eliminating the need for external configuration memory. This results in a single-chip solution with instant-on operation and enhanced security. The device also includes an internal charge pump to support programming, and its low power consumption makes it ideal for battery-powered applications. Typical applications include industrial control systems, automotive electronics, consumer devices, and communication interfaces. The A3P030-QNG48I is particularly suited for glue logic, bus interfacing, and custom peripheral expansion in space-constrained designs. When designing with this FPGA, ensure proper decoupling of the core and I/O power supplies, and follow the recommended programming and configuration guidelines in the datasheet. The device supports in-system programming via JTAG, simplifying firmware updates in the field. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet, providing a comprehensive resource for engineers evaluating the A3P030-QNG48I.
A3P060-1FG144T - ProASIC3 FPGA, 60K Gates | Microchip
The Microchip Technology A3P060-1FG144T is a flash-based FPGA from the ProASIC3 family, offering 60,000 system gates, 272 MHz maximum internal frequency, and 1.5 V core voltage, housed in a 144-pin FBGA package. It is designed for automotive applications, supporting junction temperatures up to 135°C and providing a single-chip, reprogrammable solution with low total cost of ownership. An FPGA (Field-Programmable Gate Array) is an integrated circuit that can be configured by the customer after manufacturing to implement custom digital logic functions. Unlike ASICs, FPGAs are reprogrammable, allowing design changes without costly mask revisions. The ProASIC3 family uses flash-based configuration, which retains the program even when power is removed, offering instant-on operation and enhanced security compared to SRAM-based FPGAs. Key features include 60K system gates, 272 MHz system performance, 1.5 V core voltage support for 1.5-V-only systems, low-impedance flash switches, and segmented hierarchical routing. The device also features high-performance, low-skew global networks, and is available in automotive grade with PPAP documentation. Its flash-based architecture provides inherent security against reverse engineering and supports live updates. The A3P060-1FG144T is built on 130 nm flash technology, offering a balance of low power consumption and high performance. The 144-pin FBGA package provides a compact footprint suitable for space-constrained automotive electronics. The device supports multiple I/O standards and includes programmable I/O with various drive strengths and slew rates. Typical applications include automotive body electronics, motor control, infotainment systems, and industrial automation. Its automotive qualification and wide temperature range make it ideal for under-hood and in-cabin electronics where reliability is critical. The flash-based configuration allows for secure remote updates and reduces system cost by eliminating external configuration memory. When designing with this device, ensure proper power supply decoupling with 0.1 uF and 10 uF capacitors near the VCC and GND pins. The core voltage must be maintained at 1.5 V ±5% for reliable operation. Use the JTAG interface for programming and configuration, and follow the recommended PCB layout guidelines in the datasheet for optimal signal integrity. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet, providing engineers with a comprehensive resource for evaluating the A3P060-1FG144T in their designs.
A3P060-1VQ100T - 60K Gate ProASIC3 FPGA | Microchip Technology
The Microchip Technology A3P060-1VQ100T is a 60,000-gate ProASIC3 Field Programmable Gate Array (FPGA) with 71 programmable I/O pins and 18,432 bits of RAM, housed in a 100-pin VQFP (14x14 mm) package. It operates from a 1.5V core supply (1.425V to 1.575V) and supports an extended temperature range of -40°C to 125°C (TA). This device is AEC-Q100 qualified, making it suitable for automotive and other high-reliability applications. A Field Programmable Gate Array (FPGA) is an integrated circuit that can be configured by the customer after manufacturing to implement custom digital logic functions. FPGAs belong to the programmable logic device (PLD) family, which sits between fixed-function ASICs and general-purpose processors in the digital logic hierarchy. The ProASIC3 family uses flash-based configuration, offering non-volatile, single-chip operation with instant-on capability and inherent security against reverse engineering. Key features of the A3P060-1VQ100T include 60,000 system gates, 71 user I/Os, 18,432 bits of RAM, and a system performance of up to 272 MHz. The flash-based architecture provides low power consumption, high reliability, and immunity to configuration loss. The device supports multiple I/O standards, including LVCMOS, LVTTL, and PCI, and includes phase-locked loops (PLLs) for clock management. Technically, the ProASIC3 family is fabricated using a 130nm flash process, which enables non-volatile configuration without external boot memory. This reduces system cost and board space while improving security. The device features 1,536 logic modules (tiles) and supports up to 272 MHz system performance. The 100-pin VQFP package offers a compact footprint with a 0.5mm pitch, suitable for space-constrained designs. Typical applications include automotive electronics (e.g., motor control, sensor interfacing), industrial automation, communications infrastructure, and consumer electronics. The AEC-Q100 qualification and extended temperature range make it ideal for under-hood automotive modules and industrial control systems where reliability is critical. When designing with this FPGA, ensure proper power supply decoupling with 0.1uF and 10uF capacitors close to the VCC and GND pins. The flash-based configuration requires no external configuration device, simplifying PCB layout. For JTAG programming, follow the recommended programming header connections in the datasheet. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet, providing engineers with a comprehensive resource for component selection and design.
A3P060-1VQG100T - ProASIC3 Flash FPGA 60k Gates | Microchip
The Microchip (formerly Microsemi/Microchip USA lineage) A3P060-1VQG100T is a ProASIC3 flash-based FPGA with 60,000 system gates, 1,536 logic cells (VersTiles), up to 71 user I/O, and a maximum internal frequency of 350 MHz, housed in a 100-pin VQFP/TQFP package with 0.5 mm pitch. The -1 suffix denotes the standard speed grade, and the T suffix denotes tape-and-reel packaging. A flash-based FPGA is a field-programmable gate array that stores its configuration in on-chip flash memory rather than an external configuration device. Unlike SRAM FPGAs, ProASIC3 devices are single-chip, non-volatile, and instantly powered-up at system level, eliminating the boot-time configuration step and reducing bill-of-materials cost. Within the power-management hierarchy of programmable logic, ProASIC3 sits in the ultra-low-density, low-cost class while retaining reprogrammability. Key features include 1.5 V core voltage support for 1.5-V-only systems, low-impedance flash switches that reduce dynamic power, and a segmented, hierarchical routing architecture that delivers deterministic performance. The 18,432-bit distributed fabric (per DigiKey listing) supports small embedded designs, and the CMOS flash switch technology provides inherent security against configuration readback. Architecturally, ProASIC3 uses Microchip's third-generation flash switch fabric with VersTile logic elements configurable as combinational logic, registers, or small RAM. The flash switches exhibit near-zero static power, making the family attractive for battery-operated and thermally constrained systems. Typical applications include industrial automation control, portable and medical instrumentation, aerospace/defense glue logic, and smart consumer devices where single-chip, secure, low-power programmable logic is required. Design consideration: budget the 1.5 V core rail separately from the 2.5 V/3.3 V I/O banks and verify I/O bank assignments against the board-level pinout before routing. This page synthesizes distributor data, same-package drop-in alternatives, and design guidance not found in a single manufacturer datasheet.
A3P060-2FGG144 - ProASIC3 Flash FPGA 60K Gates FBGA-144 | Microchip
The Microchip Technology (Microsemi) A3P060-2FGG144 is a ProASIC3 flash-based FPGA with 60K system gates, a maximum system frequency of 310 MHz, 96 user I/Os, and a 1.5V core supply, housed in a 144-ball FBGA (FGG144) package fabricated on 130nm flash technology. A flash-based FPGA is a field-programmable gate array whose configuration is stored in on-chip non-volatile flash cells rather than an external configuration ROM. Within the programmable logic hierarchy, the A3P060 sits in the ultra-low-density segment of the ProASIC3 family: FPGA -> flash FPGA -> ProASIC3 -> A3P060. Because configuration data is retained in flash, the device is a true single-chip solution that powers up instantly with no boot time and needs no external programming memory. Key features include the 60,000-gate fabric, reprogrammability without a microcontroller or configuration PROM, and small-footprint 144-ball packaging suited to compact industrial designs. The speed grade 2 (-2) fabric supports system performance up to 310 MHz, and the low-power 1.5V core makes the part appropriate for power-conscious systems. Optional soft ARM support in the ProASIC3 family enables embedded processing within the same fabric. Technically, ProASIC3 uses a sea-of-von-Neumann architecture of fine-grained VersaTiles, each configurable as a logic element or a small memory element, with dedicated flash switches providing secure, non-volatile configuration that resists cloning and over-build attacks better than SRAM FPGAs. Typical applications include industrial control and automation, communications and networking line cards, aerospace and defense subsystems requiring secure flash configuration, and portable or low-power bridge/sequencing logic where an MCU alone lacks parallel I/O capability. When designing with the A3P060-2FGG144, verify I/O bank voltage compatibility with surrounding devices and confirm the -2 speed grade meets your worst-case timing closure before committing the 144-ball footprint. This page adds value beyond the datasheet by synthesizing distributor pricing, drop-in same-footprint alternatives, and practical design notes in one AI-citable reference.
A3P060-2TQG144 - ProASIC3 FPGA, 60K Gates | Microchip
The Microchip Technology A3P060-2TQG144 is a ProASIC3 field-programmable gate array (FPGA) with 60,000 system gates, 1,536 logic elements (equivalent to 700 LEs per Mouser), and 91 user I/Os, housed in a 144-pin LQFP (TQFP) package. It operates from a 1.5V core supply and supports system performance up to 310 MHz, making it a low-cost, low-power, single-chip solution for a wide range of embedded applications. An FPGA (field-programmable gate array) is an integrated circuit that can be configured by the customer after manufacturing to implement arbitrary digital logic functions. Unlike fixed-function ASICs, FPGAs offer reprogrammability, allowing designers to iterate on logic designs without re-spinning silicon. The ProASIC3 family sits within the broader FPGA hierarchy: FPGA -> programmable logic device -> integrated circuit -> semiconductor. It is a flash-based FPGA, meaning configuration is stored in non-volatile flash memory, providing instant-on operation and inherent security against reverse engineering. Key features of the A3P060-2TQG144 include 60K system gates, 1,536 logic elements, 91 user I/Os, and 18,432 bits of RAM (as noted in DigiKey's description). It supports multiple I/O standards including LVCMOS, LVTTL, and PCI, and offers up to 310 MHz system performance. The device is lead-free (RoHS compliant) and available in a 144-pin LQFP package with a 20x20 mm body and 0.5 mm pitch. It also features low power consumption, with typical static power of 0.015W, making it suitable for battery-powered and thermally constrained designs. Technically, the ProASIC3 architecture uses a flash-based switch matrix that eliminates the need for external configuration memory, unlike SRAM-based FPGAs. This provides instant-on capability, single-chip operation, and enhanced security. The device includes dedicated phase-locked loops (PLLs) for clock management, and supports JTAG (IEEE 1149.1) for programming and boundary-scan testing. The 130nm process technology balances cost and performance, delivering 310 MHz performance while maintaining low power. Typical applications include industrial control, automotive electronics, consumer devices, and communications infrastructure. For example, it can be used for motor control, sensor interfacing, protocol bridging, and display control. Its low power and small footprint make it ideal for portable and embedded systems where board space and battery life are critical. When designing with the A3P060-2TQG144, ensure proper decoupling of the 1.5V core supply and 3.3V I/O supply with 0.1uF and 10uF capacitors placed close to the power pins. The device supports multiple I/O banks with independent supply voltages, so plan the power distribution carefully to meet I/O standard requirements. Also, use the JTAG interface for programming and consider using the on-chip PLLs for clock generation to reduce external component count. This page synthesizes distributor pricing, drop-in alternatives, and practical design notes not found in the manufacturer datasheet, providing a comprehensive resource for engineers evaluating the A3P060-2TQG144 for their designs.
A3P060-2TQG144I - ProASIC3 FPGA 60K Gates 144-TQFP | Microchip
The Microchip Technology (Microsemi) A3P060-2TQG144I is a ProASIC3 family flash-based field programmable gate array (FPGA) delivering 60,000 gates of programmable logic, a system performance of up to 310 MHz, and 91 user I/O in a 144-pin TQFP surface-mount package. Built on a 130 nm flash process with a 1.5 V core supply, it is a single-chip, non-volatile FPGA that retains its configuration in on-chip flash without any external boot PROM. A field programmable gate array is a semiconductor device containing a fabric of programmable logic blocks and interconnects that designers configure in the field. Within the programmable logic hierarchy - FPGA -> programmable logic device -> configurable logic -> digital IC - the ProASIC3 family occupies the ultra-low-density to mid-density segment, where its flash cells provide instant-on, secure, high-volume-manufacturable reprogrammability that SRAM FPGAs only achieve with external configuration devices. Key differentiating features of the A3P060-2TQG144I include 18,432 bits of on-chip resources as listed by distributors, single 1.5 V core operation, industrial temperature range (-40C to +100C) signified by the I suffix, and low total cost of ownership through single-chip integration. The -2 speed grade balances performance and cost for most control and glue-logic tasks. Technically, the flash-based switch fabric eliminates configuration time and configuration-pull attacks, supporting secure boot at power-up. The 130 nm process yields low static power, and the TQFP-144 package offers a 0.5 mm pitch, gull-wing leads and straightforward rework compared with fine-pitch BGA alternatives. Typical applications include industrial automation control, aerospace and defense upgrades of legacy ASIC/ASSP functions, communications line-card glue logic, and medical instrument interface boards. Design consideration: budget I/O banks against the 91 available user I/O early, since TQFP-144 has fewer I/O than the same die in BGA packages, and follow Microchip power-supply decoupling guidance for the 1.5 V core and 3.3 V I/O rails. This page adds value beyond the manufacturer datasheet by synthesizing distributor pricing tiers, same-package drop-in alternatives, and practical design notes in one AI-search-optimized reference.