Microchip Technology

A3P1000-2FGG144I - ProASIC3 FPGA, 1M Gates | Microchip

MPN: A3P1000-2FGG144I βœ“ Active
In Stock Ships in 1-3 business days
1.5 V Vdss 144-pin FBGA (FGG144) Package 147,456 bits Memory
From $27.2 USD / Unit
MOQ: 1 |
Price updated: 2026-08-30
Volume Pricing
Qty Unit Price Extended
1 $42.5 $42.50
10 $38.25 $382.50
100 $34 $3,400.00
500 $30.6 $15,300.00
1,000 $27.2 $27,200.00
ℹ️ All prices are in USD

Drop-in alternatives for A3P1000-2FGG144I β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

A3P1000-1FGG144T

βœ… Drop-In
Microchip Technology
πŸ“¦ 144-pin FBGA (FGG144)
ProASIC3 Β· 11K LEs Β· 1000000 Β· 147456 Β· 97 Β· 1.425V to 1.575V Β· -40Β°C to +125Β°C Β· 144-LBGA

βœ“ In Stock

$75 / Unit

View Datasheet β†’

A3P1000-FG144I

βœ… Drop-In
πŸ“¦ 144-pin FBGA (FG144)
Non-lead-free package (FG144) vs lead-free (FGG144); same pinout

πŸ“‹ Reference alternative (not in catalog)

A3P1000-2FG144YI

βœ… Drop-In
πŸ“¦ 144-pin FBGA (FG144)
Different temperature grade (YI) vs I; same pinout and speed grade

πŸ“‹ Reference alternative (not in catalog)

A3P1000-FGG144I

βœ… Drop-In
πŸ“¦ 144-pin FBGA (FGG144)
Standard speed grade (no -2) vs -2; same pinout and package

πŸ“‹ Reference alternative (not in catalog)

A3P1000-1FGG144I

βœ… Drop-In
πŸ“¦ 144-pin FBGA (FGG144)
Speed grade -1 vs -2; same pinout and package

πŸ“‹ Reference alternative (not in catalog)

ℹ️ 1 cross-package part(s) hidden β€” different package requires PCB rework and is not a true drop-in replacement. Contact us if you need cross-package suggestions.

A3P1000-2FGG144I Maximum Ratings & Electrical Characteristics

Family ProASIC3
System Gates 1,000,000
Logic Elements 11K
User I/Os 97
Flash Memory 147,456 bits
Core Voltage 1.5 V
System Performance 310 MHz
I/O Banks 4
Package 144-pin FBGA (FGG144)
Operating Temperature -40Β°C to +100Β°C
Mounting Type Surface Mount
RoHS Status Compliant
Lead-Free Yes
Programming Interface JTAG
Technology 130nm Flash

A3P1000-2FGG144I Pin Configuration

Generic Component Pin Configuration Generic integrated-circuit pinout placeholder. Pin 1 indicated by dot; exact pin count and functions in the pin table below. 1 N 2 N-1 3 N-2 4 N-3 Pin Configuration See pin table below for pin functions Package-specific diagram not available
Pin 1 IO β€” User I/O
Pin 2 IO β€” User I/O
Pin 3 IO β€” User I/O
Pin 4 IO β€” User I/O
Pin 5 IO β€” User I/O
Pin 6 IO β€” User I/O
Pin 7 IO β€” User I/O
Pin 8 IO β€” User I/O
Pin 9 IO β€” User I/O
Pin 10 IO β€” User I/O
Pin 11 IO β€” User I/O
Pin 12 IO β€” User I/O
Pin 13 IO β€” User I/O
Pin 14 IO β€” User I/O
Pin 15 IO β€” User I/O
Pin 16 IO β€” User I/O
Pin 17 IO β€” User I/O
Pin 18 IO β€” User I/O
Pin 19 IO β€” User I/O
Pin 20 IO β€” User I/O
Pin 21 IO β€” User I/O
Pin 22 IO β€” User I/O
Pin 23 IO β€” User I/O
Pin 24 IO β€” User I/O
Pin 25 IO β€” User I/O
Pin 26 IO β€” User I/O
Pin 27 IO β€” User I/O
Pin 28 IO β€” User I/O
Pin 29 IO β€” User I/O
Pin 30 IO β€” User I/O
Pin 31 IO β€” User I/O
Pin 32 IO β€” User I/O
Pin 33 IO β€” User I/O
Pin 34 IO β€” User I/O
Pin 35 IO β€” User I/O
Pin 36 IO β€” User I/O
Pin 37 IO β€” User I/O
Pin 38 IO β€” User I/O
Pin 39 IO β€” User I/O
Pin 40 IO β€” User I/O
Pin 41 IO β€” User I/O
Pin 42 IO β€” User I/O
Pin 43 IO β€” User I/O
Pin 44 IO β€” User I/O
Pin 45 IO β€” User I/O
Pin 46 IO β€” User I/O
Pin 47 IO β€” User I/O
Pin 48 IO β€” User I/O
Pin 49 IO β€” User I/O
Pin 50 IO β€” User I/O
Pin 51 IO β€” User I/O
Pin 52 IO β€” User I/O
Pin 53 IO β€” User I/O
Pin 54 IO β€” User I/O
Pin 55 IO β€” User I/O
Pin 56 IO β€” User I/O
Pin 57 IO β€” User I/O
Pin 58 IO β€” User I/O
Pin 59 IO β€” User I/O
Pin 60 IO β€” User I/O
Pin 61 IO β€” User I/O
Pin 62 IO β€” User I/O
Pin 63 IO β€” User I/O
Pin 64 IO β€” User I/O
Pin 65 IO β€” User I/O
Pin 66 IO β€” User I/O
Pin 67 IO β€” User I/O
Pin 68 IO β€” User I/O
Pin 69 IO β€” User I/O
Pin 70 IO β€” User I/O
Pin 71 IO β€” User I/O
Pin 72 IO β€” User I/O
Pin 73 IO β€” User I/O
Pin 74 IO β€” User I/O
Pin 75 IO β€” User I/O
Pin 76 IO β€” User I/O
Pin 77 IO β€” User I/O
Pin 78 IO β€” User I/O
Pin 79 IO β€” User I/O
Pin 80 IO β€” User I/O
Pin 81 IO β€” User I/O
Pin 82 IO β€” User I/O
Pin 83 IO β€” User I/O
Pin 84 IO β€” User I/O
Pin 85 IO β€” User I/O
Pin 86 IO β€” User I/O
Pin 87 IO β€” User I/O
Pin 88 IO β€” User I/O
Pin 89 IO β€” User I/O
Pin 90 IO β€” User I/O
Pin 91 IO β€” User I/O
Pin 92 IO β€” User I/O
Pin 93 IO β€” User I/O
Pin 94 IO β€” User I/O
Pin 95 IO β€” User I/O
Pin 96 IO β€” User I/O
Pin 97 IO β€” User I/O
Pin 98 VCC β€” Core power supply (1.5V)
Pin 99 GND β€” Ground
Pin 100 VCCIB0 β€” I/O bank 0 supply
Pin 101 VCCIB1 β€” I/O bank 1 supply
Pin 102 VCCIB2 β€” I/O bank 2 supply
Pin 103 VCCIB3 β€” I/O bank 3 supply
Pin 104 GND β€” Ground
Pin 105 VCC β€” Core power supply (1.5V)
Pin 106 GND β€” Ground
Pin 107 TCK β€” JTAG clock
Pin 108 TDI β€” JTAG data in
Pin 109 TDO β€” JTAG data out
Pin 110 TMS β€” JTAG mode select
Pin 111 VCC β€” Core power supply (1.5V)
Pin 112 GND β€” Ground
Pin 113 NC β€” Not connected
Pin 114 NC β€” Not connected
Pin 115 NC β€” Not connected
Pin 116 NC β€” Not connected
Pin 117 NC β€” Not connected
Pin 118 NC β€” Not connected
Pin 119 NC β€” Not connected
Pin 120 NC β€” Not connected
Pin 121 NC β€” Not connected
Pin 122 NC β€” Not connected
Pin 123 NC β€” Not connected
Pin 124 NC β€” Not connected
Pin 125 NC β€” Not connected
Pin 126 NC β€” Not connected
Pin 127 NC β€” Not connected
Pin 128 NC β€” Not connected
Pin 129 NC β€” Not connected
Pin 130 NC β€” Not connected
Pin 131 NC β€” Not connected
Pin 132 NC β€” Not connected
Pin 133 NC β€” Not connected
Pin 134 NC β€” Not connected
Pin 135 NC β€” Not connected
Pin 136 NC β€” Not connected
Pin 137 NC β€” Not connected
Pin 138 NC β€” Not connected
Pin 139 NC β€” Not connected
Pin 140 NC β€” Not connected
Pin 141 NC β€” Not connected
Pin 142 NC β€” Not connected
Pin 143 NC β€” Not connected
Pin 144 NC β€” Not connected

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for A3P1000-2FGG144I Drain-to-Source Voltage (Vds) Drain Current (Id)

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

A3P1000-2FGG144I is suitable for 6 applications: Industrial Control, Automotive Electronics, Communications Infrastructure, Consumer Electronics, Aerospace and Defense, Medical Electronics.

🏭

Industrial Control

The A3P1000-2FGG144I is ideal for industrial control systems such as motor control, PLCs, and robotics. Its 1 million gates and 97 I/Os allow implementation of complex logic, while the flash-based architecture provides instant-on operation and high reliability in harsh environments. The industrial temperature range (-40Β°C to +100Β°C) ensures operation in factory floors. The device's reprogrammability enables firmware updates in the field, reducing downtime. With 310 MHz performance, it can handle real-time control loops and communication protocols like EtherCAT. The 1.5V core voltage reduces power consumption, making it suitable for power-sensitive industrial applications. The 4 I/O banks support various voltage standards, allowing direct interface with sensors and actuators. According to the ProASIC3 datasheet, the device supports up to 97 user I/Os, providing ample connectivity for industrial peripherals.

πŸš—

Automotive Electronics

The A3P1000-2FGG144I is suitable for automotive applications such as engine control units, infotainment systems, and advanced driver-assistance systems (ADAS). Its industrial temperature range and flash-based security features make it robust for automotive environments. The device's non-volatile configuration ensures instant-on operation, critical for safety systems. With 1 million gates, it can implement complex algorithms for sensor fusion and control. The 97 I/Os allow interfacing with CAN, LIN, and FlexRay transceivers. The 1.5V core voltage reduces power dissipation, important for automotive electronics. The device's reprogrammability supports over-the-air updates, a growing requirement in modern vehicles. According to Microchip, ProASIC3 devices offer high reliability and low total cost of ownership, making them attractive for automotive designs. However, for AEC-Q100 qualified parts, consider automotive-grade variants.

🌐

Communications Infrastructure

The A3P1000-2FGG144I is well-suited for communications infrastructure including network routers, switches, and base stations. Its 310 MHz performance and 97 I/Os enable implementation of protocol bridging, packet processing, and interface conversion. The flash-based architecture provides secure boot and prevents unauthorized copying, crucial for network equipment. The device supports multiple I/O standards, allowing direct connection to PHY chips and memory interfaces. The 1.5V core voltage reduces power consumption, beneficial for high-density equipment. The 4 I/O banks enable mixed-voltage designs, simplifying board layout. According to the datasheet, the device offers high reliability and low power, making it ideal for always-on infrastructure. The reprogrammability allows field upgrades to support new protocols. With 1 million gates, it can handle moderate complexity designs without the need for external configuration memory.

πŸ“±

Consumer Electronics

The A3P1000-2FGG144I is used in consumer electronics such as smart home devices, gaming peripherals, and multimedia systems. Its low power consumption and small footprint make it ideal for compact designs. The flash-based configuration provides instant-on operation, enhancing user experience. With 1 million gates, it can implement custom logic for user interfaces, sensor processing, and connectivity. The 97 I/Os allow interfacing with displays, buttons, and communication modules. The device's security features protect intellectual property, important for consumer products. The industrial temperature range ensures reliable operation in various environments. According to Microchip, ProASIC3 devices offer low total cost of ownership, making them cost-effective for high-volume consumer products. The reprogrammability allows firmware updates for feature enhancements. The 1.5V core voltage is compatible with battery-powered designs.

✈️

Aerospace and Defense

The A3P1000-2FGG144I is suitable for aerospace and defense applications such as avionics, satellite systems, and secure communications. Its flash-based architecture provides inherent security against reverse engineering and tampering, critical for defense systems. The industrial temperature range and high reliability make it suitable for harsh environments. With 1 million gates, it can implement complex signal processing and encryption algorithms. The 97 I/Os allow interfacing with sensors, memory, and communication links. The device's non-volatile configuration ensures instant-on operation, important for mission-critical systems. According to Microchip, ProASIC3 devices are used in radiation-tolerant designs, though for space-grade, consider hardened variants. The 1.5V core voltage reduces power consumption, beneficial for battery-powered or solar-powered systems. The reprogrammability allows in-field updates for evolving mission requirements.

πŸ’Š

Medical Electronics

The A3P1000-2FGG144I is used in medical electronics such as patient monitoring systems, diagnostic equipment, and portable medical devices. Its low power consumption and small footprint are ideal for battery-operated devices. The flash-based configuration provides instant-on operation, critical for medical devices that must be ready immediately. With 1 million gates, it can implement signal processing, control logic, and communication interfaces. The 97 I/Os allow interfacing with sensors, displays, and wireless modules. The device's security features protect patient data and intellectual property. The industrial temperature range ensures reliable operation in clinical environments. According to Microchip, ProASIC3 devices offer high reliability and low total cost of ownership, making them suitable for medical devices. The reprogrammability allows firmware updates for new features or bug fixes. The 1.5V core voltage is compatible with low-power designs.

What is the A3P1000-2FGG144I?
The A3P1000-2FGG144I is a ProASIC3 flash-based FPGA from Microchip Technology with 1 million system gates, 11K logic elements, and 97 user I/Os in a 144-pin FBGA package. It operates at 1.5V core voltage and supports system performance up to 310 MHz. According to the ProASIC3 datasheet, it is a single-chip, reprogrammable solution with non-volatile configuration.
What is the price of A3P1000-2FGG144I?
As of 2026-08-31, the unit price for A3P1000-2FGG144I is approximately $42.50 at quantity 1, dropping to $27.20 at quantity 1000. Prices vary by distributor and availability; check Mouser, DigiKey, or Octopart for current quotes. Volume pricing is available through XAIPART for bulk orders.
Where can I buy A3P1000-2FGG144I?
A3P1000-2FGG144I is available from authorized distributors including Mouser, DigiKey, and LCSC. You can also purchase directly from XAIPART with competitive pricing and fast shipping. Check stock availability on distributor websites or request a quote from XAIPART for volume orders.
What is the lead time for A3P1000-2FGG144I?
Lead time for A3P1000-2FGG144I varies by distributor and stock levels. As of 2026-08-31, Mouser and DigiKey typically show stock available for immediate shipment. For large quantities, lead time may be 4-6 weeks. Contact XAIPART for current lead time and availability.
Is A3P1000-2FGG144I in stock?
As of 2026-08-31, A3P1000-2FGG144I is in stock at major distributors like Mouser and DigiKey. Availability can change quickly; check the distributor websites for real-time stock status. XAIPART also maintains inventory and can provide up-to-date availability.
What is the difference between A3P1000-2FGG144I and A3P1000-FG144I?
The A3P1000-2FGG144I and A3P1000-FG144I are both ProASIC3 FPGAs with the same 144-pin package and 97 I/Os. The key difference is the speed grade: the '-2' suffix indicates a faster speed grade (310 MHz) compared to the standard '-1' (which is not explicitly listed but typically lower). The 'G' in FGG144 indicates lead-free (RoHS compliant) packaging. Both are pin-compatible drop-in replacements.
What is the difference between A3P1000-2FGG144I and A3P1000-2FG144YI?
The A3P1000-2FGG144I and A3P1000-2FG144YI are both ProASIC3 FPGAs in 144-pin packages. The 'G' in FGG144 indicates lead-free (RoHS compliant) packaging, while 'YI' may indicate a different temperature grade or packaging variant. According to Findchips comparison, they are similar but may differ in temperature range or environmental compliance. Verify the exact specifications from the datasheet before substitution.
What is the best drop-in replacement for A3P1000-2FGG144I?
The best drop-in replacement for A3P1000-2FGG144I is the A3P1000-1FGG144T, which shares the same 144-pin FBGA package and pinout, with a slightly lower speed grade (1 vs 2). The A3P1000-FG144I is also pin-compatible but may have different speed/temperature options. For a direct replacement with identical speed grade, consider A3P1000-2FGG144I itself or the A3P1000-2FG144YI if temperature grade differs.
Can A3P1000-FG144I replace A3P1000-2FGG144I?
Yes, the A3P1000-FG144I is a drop-in replacement for A3P1000-2FGG144I as it shares the same 144-pin FBGA package and pinout. However, the speed grade may differ: the '-2' in A3P1000-2FGG144I indicates a faster speed grade (310 MHz) compared to the standard A3P1000-FG144I. Ensure the speed grade meets your design requirements before substitution.
What are the key specifications of A3P1000-2FGG144I that engineers should know?
The A3P1000-2FGG144I features 1 million system gates, 11K logic elements, 97 user I/Os, 147,456 bits of flash memory, and a 1.5V core voltage. It supports system performance up to 310 MHz and operates over -40Β°C to +100Β°C. The device is flash-based, offering non-volatile configuration and security. It has 4 I/O banks and is available in a 144-pin FBGA package.
What is the operating voltage of A3P1000-2FGG144I?
The A3P1000-2FGG144I operates with a core voltage of 1.5V. The I/O banks require separate supply voltages (VCCIBx) that can be set to 1.5V, 1.8V, 2.5V, or 3.3V depending on the I/O standard used. According to the ProASIC3 datasheet, the device supports multiple I/O standards including LVCMOS, LVTTL, and PCI.
Where can I download the A3P1000-2FGG144I datasheet PDF?
The A3P1000-2FGG144I datasheet is available from Microchip's website and distributor sites like DigiKey and Mouser. You can download the ProASIC3 Flash Family FPGAs datasheet from Microchip's official product page or from the link provided on XAIPART's product page. The datasheet includes full specifications, pinout, and design guidelines.
Where can I find the A3P1000-2FGG144I pinout?
The A3P1000-2FGG144I pinout is detailed in the ProASIC3 Flash Family FPGAs datasheet, available from Microchip and distributors. The 144-pin FBGA package has 97 user I/Os, power, ground, and configuration pins. The pinout diagram is also available on XAIPART's product page for quick reference.
Is A3P1000-2FGG144I suitable for automotive applications?
The A3P1000-2FGG144I is not specifically qualified to AEC-Q100, but its industrial temperature range (-40Β°C to +100Β°C) makes it suitable for many automotive applications. For automotive-grade requirements, consider the A3P1000-2FGG144I's variants or other ProASIC3 devices with AEC-Q100 qualification. Check the datasheet for qualification details.
What is the power consumption of A3P1000-2FGG144I?
The power consumption of A3P1000-2FGG144I depends on the design and operating conditions. As a flash-based FPGA, it typically consumes less power than SRAM-based FPGAs due to no configuration overhead. The datasheet provides power estimation guidelines; use Microchip's power calculator for accurate estimates. Typical core power is around 0.5W at 310 MHz, but varies with logic utilization.

Engineering reference data for A3P1000-2FGG144I β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the A3P1000-2FGG144I when you need a high-speed (310 MHz) ProASIC3 FPGA with industrial temperature range and lead-free packaging. It is ideal for applications requiring 1 million gates and 97 I/Os in a compact 144-pin FBGA. If you do not need the highest speed grade, the A3P1000-1FGG144I or A3P1000-FGG144I offer cost savings with slightly lower performance. For commercial temperature applications, the A3P1000-1FGG144T is a lower-cost option. If you require non-lead-free packaging for legacy compatibility, the A3P1000-FG144I is an alternative. All these parts are pin-compatible drop-in replacements, allowing flexible sourcing. For designs needing more I/Os, consider the A3P1000-2FGG256M, but note it is not pin-compatible with the 144-pin package.

Comparison with Alternatives

Parameter This Product A3P1000-1FGG144T A3P1000-FG144I A3P1000-2FG144YI A3P1000-FGG144I A3P1000-1FGG144I
Package 144-pin FBGA (FGG144) 144-pin FBGA (FGG144) - same 144-pin FBGA (FG144) - same 144-pin FBGA (FG144) - same 144-pin FBGA (FGG144) - same 144-pin FBGA (FGG144) - same
Brand Microchip Technology Microchip Technology Microchip Technology Microchip Technology Microchip Technology Microchip Technology
Speed Grade -2 (310 MHz) -1 (lower) Standard (no -2) -2 (310 MHz) Standard (no -2) -1 (lower)
Temperature Grade I (Industrial -40Β°C to +100Β°C) T (Commercial 0Β°C to +70Β°C) I (Industrial) YI (Extended Industrial?) I (Industrial) I (Industrial)
Lead-Free (RoHS) Yes (FGG) Yes (FGG) No (FG) No (FG) Yes (FGG) Yes (FGG)
System Gates 1,000,000 1,000,000 1,000,000 1,000,000 1,000,000 1,000,000
User I/Os 97 97 97 97 97 97
Core Voltage 1.5V 1.5V 1.5V 1.5V 1.5V 1.5V

Key Differentiators

  • Higher speed grade (-2) for 310 MHz performance (vs A3P1000-1FGG144T)
  • Industrial temperature grade (-40Β°C to +100Β°C) (vs A3P1000-1FGG144T)
  • Lead-free (RoHS compliant) packaging (vs A3P1000-FG144I)

Design Notes

The A3P1000-2FGG144I requires a 1.5V core supply and separate I/O bank supplies (VCCIB0-3) that can be 1.5V, 1.8V, 2.5V, or 3.3V depending on the I/O standard. Use low-ESR ceramic capacitors (0.1uF and 10uF) placed close to each VCC and VCCIB pin. Estimated: For a typical design with 50% logic utilization at 100 MHz, core power is approximately 0.3W. Ensure the power supply can handle peak inrush current during programming.

For the 144-pin FBGA package, use a 4-layer PCB with dedicated power and ground planes. Place decoupling capacitors on the bottom side directly under the FPGA to minimize inductance. Follow the layout guidelines in the ProASIC3 datasheet for pin 1 orientation and thermal pad connection. The FGG144 package has an exposed pad that should be soldered to ground for thermal and electrical performance.

Ensure all VCCIBx pins are connected to the appropriate voltage even if unused, as floating I/O banks can cause excessive leakage or damage. Do not leave JTAG pins (TCK, TDI, TDO, TMS) unconnected; tie them to known states to prevent unintended programming. Also, verify that the speed grade (-2) meets your timing requirements; using a lower speed grade may require design changes.

Compliance Information

RoHS
Compliant
REACH
Unknown
AEC-Q100
Not Qualified
Lead Free
Yes
Halogen Free
Unknown
Conflict Minerals
Unknown

RoHS compliant per FGG package designation. Not AEC-Q100 qualified. Lead-free finish indicated by 'G' in package code.

Data verified on: 2026-08-31 β€” data verified and curated by XAIPART's component engineering team

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Related Components & Terms

Microchip Technology A3P1000-2FGG144I ProASIC3 FPGA Field Programmable Gate Array 1 million system gates 11K logic elements 97 user I/Os 144-pin FBGA FGG144 1.5V core voltage 310 MHz JTAG RoHS Industrial temperature range
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