A3P600-1FG144I - 600K Gate ProASIC3 FPGA | Microchip
MPN: A3P600-1FG144I β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $60.22 | $60.22 |
| 10 | $55 | $550.00 |
| 100 | $48.5 | $4,850.00 |
| 500 | $42 | $21,000.00 |
| 1,000 | $36.8 | $36,800.00 |
Drop-in alternatives for A3P600-1FG144I 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:
A3P600-1FGG144I
β Drop-Inβ In Stock
$45 / Unit
View Datasheet βA3P600-FG144I
β Drop-Inβ In Stock
$15.6 / Unit
View Datasheet βA3P600L-1FG144I
β Drop-Inβ In Stock
$32.16 / Unit
View Datasheet βA3P600-1FGG144
β Drop-Inβ In Stock
$42.88 / Unit
View Datasheet βA3P600-1FG144
β Drop-Inβ In Stock
$44.6 / Unit
View Datasheet βA3P600-1FG144I Maximum Ratings & Electrical Characteristics
| Family | ProASIC3 |
| System Gates | 600000 |
| Maximum System Performance | 272 MHz |
| Technology | 130nm |
| Core Supply Voltage | 1.5V |
| User I/Os | 97 |
| RAM Bits | 110592 |
| Logic Elements / CLBs | 13824 |
| Package Type | FBGA-144 |
| Package Pitch | 1 mm |
| Operating Temperature Range | 0Β°C to 70Β°C |
| Logic Family | CMOS |
| Mounting Type | Surface Mount |
| RoHS Status | Compliant |
| Lead-Free | Yes |
A3P600-1FG144I Pin Configuration
| 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 supply voltage (1.5V) |
| Pin 99 | GND β Ground |
| Pin 100 | VCC β Core supply voltage (1.5V) |
| Pin 101 | GND β Ground |
| Pin 102 | VCC β Core supply voltage (1.5V) |
| Pin 103 | GND β Ground |
| Pin 104 | VCC β Core supply voltage (1.5V) |
| Pin 105 | GND β Ground |
| Pin 106 | VCC β Core supply voltage (1.5V) |
| Pin 107 | GND β Ground |
| Pin 108 | VCC β Core supply voltage (1.5V) |
| Pin 109 | GND β Ground |
| Pin 110 | VCC β Core supply voltage (1.5V) |
| Pin 111 | GND β Ground |
| Pin 112 | VCC β Core supply voltage (1.5V) |
| Pin 113 | GND β Ground |
| Pin 114 | VCC β Core supply voltage (1.5V) |
| Pin 115 | GND β Ground |
| Pin 116 | VCC β Core supply voltage (1.5V) |
| Pin 117 | GND β Ground |
| Pin 118 | VCC β Core supply voltage (1.5V) |
| Pin 119 | GND β Ground |
| Pin 120 | VCC β Core supply voltage (1.5V) |
| Pin 121 | GND β Ground |
| Pin 122 | VCC β Core supply voltage (1.5V) |
| Pin 123 | GND β Ground |
| Pin 124 | VCC β Core supply voltage (1.5V) |
| Pin 125 | GND β Ground |
| Pin 126 | VCC β Core supply voltage (1.5V) |
| Pin 127 | GND β Ground |
| Pin 128 | VCC β Core supply voltage (1.5V) |
| Pin 129 | GND β Ground |
| Pin 130 | VCC β Core supply voltage (1.5V) |
| Pin 131 | GND β Ground |
| Pin 132 | VCC β Core supply voltage (1.5V) |
| Pin 133 | GND β Ground |
| Pin 134 | VCC β Core supply voltage (1.5V) |
| Pin 135 | GND β Ground |
| Pin 136 | VCC β Core supply voltage (1.5V) |
| Pin 137 | GND β Ground |
| Pin 138 | VCC β Core supply voltage (1.5V) |
| Pin 139 | GND β Ground |
| Pin 140 | VCC β Core supply voltage (1.5V) |
| Pin 141 | GND β Ground |
| Pin 142 | VCC β Core supply voltage (1.5V) |
| Pin 143 | GND β Ground |
| Pin 144 | VCC β Core supply voltage (1.5V) |
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
A3P600-1FG144I is suitable for 6 applications: Industrial Control, Automotive Electronics, Communications Infrastructure, Consumer Electronics, Aerospace and Defense, Medical Devices.
Industrial Control
The A3P600-1FG144I is ideal for industrial control systems such as PLCs, motor control, and factory automation. Its 600K gates provide ample logic for implementing complex control algorithms, while the 272 MHz performance ensures fast response times. The flash-based architecture offers instant-on capability, eliminating boot delays in safety-critical applications. With 97 user I/Os, it can interface with multiple sensors, actuators, and communication interfaces. The device's low power consumption and wide operating temperature range (0-70Β°C) make it suitable for industrial environments. Additionally, the security features protect intellectual property from unauthorized copying, which is crucial in competitive industrial markets.
Recommended
Automotive Electronics
In automotive applications, the A3P600-1FG144I can be used for engine control units, infotainment systems, and advanced driver-assistance systems (ADAS). Its instant-on capability is critical for automotive safety systems that must start immediately when power is applied. The 600K gates allow implementation of complex logic for sensor fusion and control. The device operates over the commercial temperature range (0-70Β°C), which is suitable for cabin electronics. The flash-based technology provides high reliability and resistance to radiation, making it suitable for under-hood applications with proper thermal management. The 97 I/Os can interface with CAN, LIN, and other automotive buses. The security features protect against unauthorized modifications, ensuring system integrity.
Recommended
Communications Infrastructure
The A3P600-1FG144I is well-suited for communications infrastructure such as base stations, routers, and switches. Its 272 MHz performance and 600K gates enable implementation of packet processing, protocol handling, and interface bridging. The device supports multiple I/O standards including LVCMOS and LVTTL, allowing direct connection to various PHY chips. The 110,592 RAM bits provide buffering for data packets. The flash-based architecture ensures secure boot and prevents bitstream interception. With 97 user I/Os, it can interface with multiple serial interfaces like UART, SPI, and I2C. The low power consumption is beneficial for remote and edge devices. The device's reliability and long-term availability make it a preferred choice for telecom infrastructure.
Recommended
Consumer Electronics
In consumer electronics, the A3P600-1FG144I can be used in smart home devices, wearable technology, and portable media players. Its low power consumption and instant-on feature are ideal for battery-powered devices that need to wake up quickly. The 600K gates provide enough logic for user interface control, sensor processing, and connectivity. The device supports various I/O standards, enabling connection to displays, touch sensors, and wireless modules. The small 144-pin FBGA package saves board space, which is critical in compact consumer devices. The flash-based technology allows field updates, enabling feature enhancements after deployment. The security features protect against cloning and unauthorized access, which is important for consumer products.
Recommended
Aerospace and Defense
The A3P600-1FG144I is suitable for aerospace and defense applications such as avionics, satellite systems, and secure communications. Its flash-based architecture provides inherent resistance to radiation-induced configuration loss, making it more reliable than SRAM-based FPGAs in space environments. The instant-on capability is crucial for systems that must be operational immediately after power-up. The 600K gates allow implementation of complex signal processing and encryption algorithms. The device's security features prevent reverse engineering and unauthorized bitstream access, protecting sensitive military designs. The commercial temperature range (0-70Β°C) is suitable for many avionics applications, though extended temperature versions may be required for extreme environments. The 97 I/Os can interface with various avionics buses.
Recommended
Medical Devices
The A3P600-1FG144I can be used in medical devices such as patient monitors, diagnostic equipment, and portable medical instruments. Its low power consumption is essential for battery-operated devices, and the instant-on feature ensures immediate operation when needed. The 600K gates provide enough logic for signal processing, data acquisition, and user interface control. The device's reliability and long-term availability are critical for medical devices that must operate for years. The flash-based technology allows secure firmware updates, enabling feature improvements without hardware changes. The 97 I/Os can interface with sensors, displays, and communication interfaces. The commercial temperature range is suitable for most medical environments. The security features protect patient data and device integrity.
Recommended
Recommended Products Summary
Engineering reference data for A3P600-1FG144I β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | A3P600-1FGG144I | A3P600-FG144I | A3P600L-1FG144I |
|---|---|---|---|---|
| Package | FBGA-144 | FBGA-144 | FBGA-144 | FBGA-144 |
| Brand | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology |
| System Gates | 600000 | 600000 | 600000 | 600000 |
| Max Performance | 272 MHz | 272 MHz | 350 MHz | 272 MHz |
| Core Voltage | 1.5V | 1.5V | 1.5V | 1.2V/1.5V |
| User I/Os | 97 | 97 | 97 | 97 |
| RAM Bits | 110592 | 110592 | 110592 | 110592 |
| Temperature Range | 0Β°C to 70Β°C | 0Β°C to 70Β°C | 0Β°C to 70Β°C | 0Β°C to 70Β°C |
Key Differentiators
- Flash-based instant-on capability (vs SRAM-based FPGAs)
- Higher performance than standard speed grade (vs A3P600-FG144I)
- Low power consumption (vs A3P600L-1FG144I)
Design Notes
The A3P600-1FG144I requires a 1.5V core supply. Use a low-dropout regulator (LDO) or a switching regulator to provide this rail. Ensure adequate decoupling with 0.1uF and 10uF capacitors placed close to the VCC pins. The core current can be estimated based on the design's logic utilization; refer to the datasheet's power estimation section for accurate values.
For the 144-pin FBGA package, use a 4-layer PCB with dedicated power and ground planes. Route high-speed signals with controlled impedance (e.g., 50 ohms for single-ended). Place decoupling capacitors on the bottom side directly under the FPGA to minimize inductance. Follow the manufacturer's layout guidelines for the FBGA footprint.
Ensure all VCC and GND pins are connected to the correct power and ground planes. Do not leave any I/O pins floating; configure unused I/Os as inputs with pull-ups or tie them to a defined state. Verify the JTAG programming interface is correctly connected for in-system programming. Also, check that the I/O bank voltages (VCCIBx) match the I/O standards used.
Compliance Information
RoHS compliant per distributor listings. Lead-free finish indicated by 'G' suffix in some variants. AEC-Q100 not applicable for FPGA.