M1AFS1500-1FGG676I - Fusion Mixed-Signal FPGA 252 I/O | Microchip
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Drop-in alternatives for M1AFS1500-1FGG676I — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
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AFS1500-1FGG676I
✅ Drop-In📋 Reference alternative (not in catalog)
M1AFS1500-2FGG676I
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M1AFS1500-FGG676I
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$89.9 / Unit
View Datasheet →M1AFS1500-1FGG676I Maximum Ratings & Electrical Characteristics
| Family | Fusion (Mixed-Signal FPGA) |
| System Gates | 1.5 M gates |
| Logic Resources | 276480 bits |
| User I/O | 252 |
| Core Supply Voltage | 1.5 V |
| Process Technology | 130 nm flash-based |
| Configuration Memory | Flash (non-volatile, instant-on) |
| Speed Grade | -1 |
| Package | 676-pin FBGA (FGG676) |
| Operating Temperature | -40C to +85C (industrial) |
| Mounting Type | Surface Mount |
| Analog Peripherals | Integrated configurable analog blocks (voltage, current, temperature monitoring) |
| Embedded Flash Memory | Large flash memory blocks integrated |
| Clock Management | Integrated clock generation and management circuitry |
| On-Chip Frequency Characterization | 1282.05 MHz (datasheet family metric) |
| Packaging | Tray |
M1AFS1500-1FGG676I 676-pin fbga (fgg676) Pin Configuration Guide
Complete pinout information for M1AFS1500-1FGG676I (676-pin fbga (fgg676) package). This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for M1AFS1500-1FGG676I.
Refer to the datasheet for full pin configuration.
Safe Operating Area (SOA) & Thermal Characteristics
No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.
Typical Applications
M1AFS1500-1FGG676I is suitable for 6 applications: Industrial Automation Controllers, Power Supply Supervision and Telemetry, Aerospace and Defense System Management, Embedded System Management (BMC/Chassis Management), Medical Instrumentation Monitoring, Test and Measurement Equipment.
Industrial Automation Controllers
The M1AFS1500-1FGG676I fits industrial controller designs that need a single monolithic device combining programmable logic, flash configuration, and analog telemetry. Its 252 user I/Os support multiple industrial interface banks, while the integrated analog blocks monitor board-level voltage, current, and temperature without external supervisory ICs. Because configuration is flash-based, the controller is operational within milliseconds of power-up - important for machinery with strict reset-to-run requirements. The 130nm fabric at the -1 speed grade comfortably implements state machines, interlocks, and communication glue logic; the trade-off is that this is not the fastest fabric available, so designers should keep high-throughput datapaths modest and rely on the device's integration advantage for control-plane logic in factory automation and motor-control supervisory nodes.
Recommended
Power Supply Supervision and Telemetry
Fusion's defining feature is its configurable analog subsystem, making the M1AFS1500-1FGG676I a natural fit for multi-rail power-supply supervision. On-chip analog monitoring tracks voltages, currents, and temperature across the backplane, and the flash fabric implements threshold logic, sequencing, and fault logging without a separate microcontroller. In a typical deployment the FPGA watches 12 or more rails, asserts enable signals in the correct sequence, and reports telemetry over an embedded interface; unlike a discrete supervisor chain, thresholds and sequences are reprogrammable in the field. Designers should budget the analog block's channel count and accuracy expectations from the Fusion datasheet, since this integration replaces several discrete monitor ICs and shrinks BOM cost in telecom rectifiers, server power shelves, and industrial PSU monitoring.
Recommended
Aerospace and Defense System Management
Flash-based configuration gives the M1AFS1500-1FGG676I inherent single-event-upset resilience compared with SRAM FPGAs, and the monolithic device powers up with valid configuration instantly - two properties valued in defense ground systems, test sets, and platform management units. The industrial -40C to +85C grade covers most ground-based environments, and the 676-ball FBGA provides the I/O density needed for chassis management, built-in-test, and secure bootstrap functions. Note that this commercial-industrial part is not radiation qualified: for flight missions, Microchip's RTAX family (such as RTAX2000S or RTAX4000S) is the appropriate qualified choice. For non-rad programs, Fusion reduces component count by folding housekeeping analog, flash storage, and control logic into one die, improving reliability and shrinking board area in constrained enclosures.
Recommended
Embedded System Management (BMC/Chassis Management)
The M1AFS1500-1FGG676I serves as a system-management controller in servers, storage shelves, and telecom chassis, where it aggregates fan, temperature, voltage, and slot-presence signals. The integrated flash blocks store logs and firmware images, the analog blocks digitize sensor inputs directly, and the 1.5V-core fabric implements protocol bridges to the management network. Because Fusion is non-volatile and instant-on, management functions are available before host processors boot - critical for pre-boot health checks and Brownout protection. With 252 I/Os the device can fan out to many slots without external buffer logic. Designers trade off the 130nm fabric's modest performance against this integration: management state machines and I2C/UART bridges run comfortably, but the part is not intended for host datapath processing.
Recommended
Medical Instrumentation Monitoring
Medical diagnostic devices benefit from the M1AFS1500-1FGG676I's ability to monitor internal supply rails, patient-module connection integrity, and enclosure temperature through its configurable analog blocks while simultaneously implementing interface and control logic in flash fabric. Non-volatile configuration ensures the instrument is functional the moment power is applied, supporting the fast power-up expectations of point-of-care equipment, and field upgrades are performed by reprogramming flash without changing hardware. The industrial temperature grade covers clinical environments comfortably. Typical roles include front-end sequencing for analog acquisition boards, interlock logic for X-ray or laser subsystems, and communication glue logic between acquisition ASICs and the host compute module. Designers should follow IEC 60601 system-level isolation practices externally, since the FPGA itself does not provide patient-isolation barriers.
Recommended
Test and Measurement Equipment
Bench and rack instruments use the M1AFS1500-1FGG676I as housekeeping and interface logic: the analog subsystem monitors internal rails and self-temperature, the flash fabric implements trigger distribution, relay control, and bus interfaces, and 252 I/Os connect front-panel and backplane signals without external glue. Instant-on flash configuration lets the instrument pass self-test immediately at power-up, an expectation in automated test systems where boot delays reduce throughput. The -1 speed grade handles management and interface clocks; designers needing nanosecond-grade timing capture should pair the FPGA with dedicated front-end circuitry. Integration of monitoring, storage, and logic in one die shortens the instrument's board and firmware bring-up compared with a discrete supervisor-plus-CPLD-plus-flash approach commonly used in legacy designs.
Recommended
Recommended Products Summary
Engineering reference data for M1AFS1500-1FGG676I — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | AFS1500-1FGG676I | M1AFS1500-2FGG676I | M1AFS1500-FGG676I |
|---|---|---|---|---|
| Package | 676-pin FBGA (FGG676) | 676-pin FBGA (FGG676) - same | 676-pin FBGA (FGG676) - same | 676-pin FBGA (FGG676) - same |
| Brand | Microchip Technology (Microsemi) | Microchip Technology (Microsemi) | Microchip Technology (Microsemi) | Microchip Technology (Microsemi) |
| System Gates | 1.5 M gates | 1.5 M gates | 1.5 M gates | 1.5 M gates |
| User I/O | 252 | 252 | 252 | 252 |
| Core Voltage | 1.5 V | 1.5 V | 1.5 V | 1.5 V |
| Speed Grade | -1 | -1 | -2 (faster) | Standard (slower than -1) |
| Configuration Memory | Flash (non-volatile, instant-on) | Flash (non-volatile, instant-on) | Flash (non-volatile, instant-on) | Flash (non-volatile, instant-on) |
| Operating Temperature | -40C to +85C (industrial) | -40C to +85C (industrial) | -40C to +85C (industrial) | -40C to +85C (industrial) |
Key Differentiators
- Faster timing at no footprint cost (vs M1AFS1500-FGG676I)
- Same silicon through an alternate ordering flow (vs AFS1500-1FGG676I)
- Non-volatile flash configuration with integrated analog (vs Xilinx/Intel SRAM FPGAs)
Design Notes
The M1AFS1500-1FGG676I runs from a 1.5V core with additional per-bank I/O rails set by the interface standards used. Estimate core current from the Microchip Fusion power calculator in Libero SoC before sizing regulators; Fusion flash fabric draws essentially zero configuration current at power-up, unlike SRAM FPGAs, which simplifies inrush design. Decouple each rail with bulk ceramic plus local 0.1uF capacitors at BGA via field arrays, and follow the Fusion family power sequencing application note to ensure I/O banks do not back-drive the core during multi-rail ramp-up.
A 676-ball FBGA with 1.0mm or finer pitch requires careful fanout planning: use via-in-pad or dogbone fanout on outer rows and route inner balls on inner layers. Target controlled-impedance stackup for high-speed I/O banks and reserve solid ground planes adjacent to signal layers. Place bulk capacitance for the 1.5V core distributed symmetrically under the package to minimize IR drop across the ball field. Follow Microchip's Fusion PCB layout guidelines for ball-map escape routing, and verify land pattern per the FGG676 mechanical drawing in the datasheet before fabrication.
Two frequent mistakes with Fusion designs: (1) assuming a cross-brand FPGA can substitute - Fusion's integrated analog subsystem and flash fabric have no pin-compatible equivalent, so supply-chain plans should qualify AFS1500-1FGG676I or FGG676 speed-grade variants instead; (2) overlooking that speed grades are not interchangeable for timing-critical designs - a standard-grade device may not meet timing closure verified on a -1 or -2 part. Always re-run Libero SoC timing analysis after any device substitution, and confirm date-code authenticity when purchasing mature Fusion inventory from broker channels.
Compliance Information
Compliance status not stated in the provided web data; verify RoHS/REACH status on the official Microchip M1AFS1500 product page compliance documentation.