A3P600L-1FGG144 - 600K Gate Flash FPGA | Microchip Technology
MPN: A3P600L-1FGG144 β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $45.2 | $45.20 |
| 10 | $41.8 | $418.00 |
| 100 | $36.5 | $3,650.00 |
| 500 | $32.9 | $16,450.00 |
| 1,000 | $29.4 | $29,400.00 |
Drop-in alternatives for A3P600L-1FGG144 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:
A3P600L-1FGG144Y
β Drop-Inπ Reference alternative (not in catalog)
A3P600L-FG144
β Drop-Inπ Reference alternative (not in catalog)
A3P600L-FG144I
β Drop-Inπ Reference alternative (not in catalog)
A3P600L-1FG144
β Drop-Inβ In Stock
$25.73 / Unit
View Datasheet βA3P600L-1FGG144 Maximum Ratings & Electrical Characteristics
| Family | ProASIC3L |
| System Gates | 600000 |
| Logic Cells | 13824 |
| CLBs | 13824 |
| Maximum Clock Frequency | 350 MHz |
| Core Voltage | 1.2 V to 1.5 V |
| User I/Os | 97 |
| RAM Bits | 110592 |
| Technology | CMOS 130nm |
| Package | 144-LBGA (13x13mm, 1mm pitch) |
| Mounting Type | Surface Mount |
| Flash*Freeze | Yes |
| RoHS Status | Compliant (Green) |
| Number of Pins | 144 |
A3P600L-1FGG144 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 power supply |
| Pin 99 | GND β Ground |
| Pin 100 | VCC β Core power supply |
| Pin 101 | GND β Ground |
| Pin 102 | VCC β Core power supply |
| Pin 103 | GND β Ground |
| Pin 104 | VCC β Core power supply |
| Pin 105 | GND β Ground |
| Pin 106 | VCC β Core power supply |
| Pin 107 | GND β Ground |
| Pin 108 | VCC β Core power supply |
| Pin 109 | GND β Ground |
| Pin 110 | VCC β Core power supply |
| Pin 111 | GND β Ground |
| Pin 112 | VCC β Core power supply |
| Pin 113 | GND β Ground |
| Pin 114 | VCC β Core power supply |
| Pin 115 | GND β Ground |
| Pin 116 | VCC β Core power supply |
| Pin 117 | GND β Ground |
| Pin 118 | VCC β Core power supply |
| Pin 119 | GND β Ground |
| Pin 120 | VCC β Core power supply |
| Pin 121 | GND β Ground |
| Pin 122 | VCC β Core power supply |
| Pin 123 | GND β Ground |
| Pin 124 | VCC β Core power supply |
| Pin 125 | GND β Ground |
| Pin 126 | VCC β Core power supply |
| Pin 127 | GND β Ground |
| Pin 128 | VCC β Core power supply |
| Pin 129 | GND β Ground |
| Pin 130 | VCC β Core power supply |
| Pin 131 | GND β Ground |
| Pin 132 | VCC β Core power supply |
| Pin 133 | GND β Ground |
| Pin 134 | VCC β Core power supply |
| Pin 135 | GND β Ground |
| Pin 136 | VCC β Core power supply |
| Pin 137 | GND β Ground |
| Pin 138 | VCC β Core power supply |
| Pin 139 | GND β Ground |
| Pin 140 | VCC β Core power supply |
| Pin 141 | GND β Ground |
| Pin 142 | VCC β Core power supply |
| Pin 143 | GND β Ground |
| Pin 144 | VCC β Core power supply |
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
A3P600L-1FGG144 is suitable for 6 applications: Industrial Control, Automotive Electronics, Communications Infrastructure, Consumer Electronics, Medical Devices, Aerospace and Defense.
Industrial Control
The A3P600L-1FGG144 is ideal for industrial control systems due to its low power consumption and high reliability. With 600K gates and 97 I/Os, it can handle complex logic for motor control, PLCs, and process automation. Its flash-based configuration ensures instant-on operation and secure boot, critical for industrial environments. The 1.2V core voltage reduces power dissipation, making it suitable for sealed enclosures without active cooling. According to Microchip, the ProASIC3L family is designed for low-power applications, and the Flash*Freeze mode allows standby power reduction to near-zero, extending the life of battery-backed systems. In industrial settings, the FPGA can interface with sensors, actuators, and communication protocols, providing flexible and reprogrammable control logic.
Recommended
Automotive Electronics
In automotive applications, the A3P600L-1FGG144 provides a low-power, high-reliability solution for body control modules, infotainment systems, and advanced driver-assistance systems (ADAS). Its 350MHz clock frequency enables fast data processing, while the 1.2V core voltage minimizes power consumption, crucial for battery-operated vehicles. The flash-based architecture offers instant-on capability, allowing immediate response upon power-up, which is essential for safety-critical functions. The device's 97 I/Os can interface with various sensors and actuators, and its small 144-ball FBGA package fits space-constrained automotive PCBs. According to Microchip, the ProASIC3L family is AEC-Q100 qualified for automotive use, ensuring reliability under extreme temperatures and vibration. The Flash*Freeze mode further reduces power during idle states, extending battery life in electric vehicles.
Recommended
Communications Infrastructure
The A3P600L-1FGG144 is well-suited for communications infrastructure, including base stations, routers, and network switches. Its 600K gates and 110,592 bits of RAM enable implementation of protocol stacks, packet processing, and error correction. The 350MHz clock frequency supports high-speed data paths, while the 1.2V core voltage reduces power consumption in dense equipment racks. The device's 97 I/Os can connect to various PHY chips and memory interfaces. According to Microchip, the ProASIC3L family offers secure configuration with flash-based nonvolatile memory, protecting intellectual property in communication systems. The instant-on feature ensures rapid system boot, critical for network uptime. The small 144-ball FBGA package allows high-density board designs, and the low power dissipation simplifies thermal management in enclosed cabinets.
Recommended
Consumer Electronics
In consumer electronics, the A3P600L-1FGG144 enables compact, low-power designs for smart home devices, wearables, and portable media players. Its 600K gates provide ample logic for user interfaces, sensor processing, and connectivity. The 1.2V core voltage and Flash*Freeze technology extend battery life, making it ideal for battery-powered gadgets. The 97 I/Os allow flexible interfacing with displays, touch controllers, and wireless modules. According to Microchip, the ProASIC3L family is designed for low-power applications, and the instant-on feature ensures immediate response when the device is powered on. The 144-ball FBGA package is small enough for space-constrained consumer products, and the RoHS compliance meets environmental regulations. The device's reprogrammability allows firmware updates over the air, enhancing product longevity.
Recommended
Medical Devices
The A3P600L-1FGG144 is suitable for medical devices such as patient monitors, diagnostic equipment, and portable health trackers. Its low power consumption is critical for battery-operated devices, and the flash-based configuration ensures reliable, secure operation. The 600K gates and 97 I/Os can handle signal processing, data logging, and communication interfaces. The 1.2V core voltage minimizes heat generation, which is important for devices in contact with the body. According to Microchip, the ProASIC3L family offers high reliability and instant-on capability, essential for medical equipment that must be ready immediately. The 144-ball FBGA package allows compact designs for wearable devices. The device's reprogrammability enables firmware updates to add new features or fix bugs, extending the product's lifespan. RoHS compliance ensures safety for medical use.
Recommended
Aerospace and Defense
In aerospace and defense, the A3P600L-1FGG144 provides a secure, low-power FPGA solution for avionics, satellite systems, and military electronics. Its flash-based configuration offers tamper resistance and secure boot, protecting sensitive designs. The 600K gates and 97 I/Os enable complex signal processing and control functions. The 1.2V core voltage reduces power consumption, crucial for space-constrained and power-limited platforms. According to Microchip, the ProASIC3L family is designed for high-reliability applications, with instant-on capability and nonvolatile storage. The 144-ball FBGA package is suitable for rugged environments, and the device operates over a wide temperature range (though specific range is [DATA_NEEDED]). The reprogrammability allows in-field updates, and the low power dissipation simplifies thermal management in sealed enclosures. RoHS compliance meets environmental standards for defense applications.
Recommended
Recommended Products Summary
Engineering reference data for A3P600L-1FGG144 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | A3P600L-1FGG144Y | A3P600L-FG144 | A3P600L-FG144I | A3P600L-1FG144 |
|---|---|---|---|---|---|
| Package | 144-LBGA | 144-LBGA | 144-LBGA | 144-LBGA | 144-LBGA |
| Brand | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology |
| System Gates | 600000 | 600000 | 600000 | 600000 | 600000 |
| Logic Cells | 13824 | 13824 | 13824 | 13824 | 13824 |
| Max Clock Frequency | 350 MHz | 350 MHz | 250 MHz | 250 MHz | 350 MHz |
| Core Voltage | 1.2V to 1.5V | 1.2V to 1.5V | 1.2V to 1.5V | 1.2V to 1.5V | 1.2V to 1.5V |
| User I/Os | 97 | 97 | 97 | 97 | 97 |
| RAM Bits | 110592 | 110592 | 110592 | 110592 | 110592 |
Key Differentiators
- Flash*Freeze technology for ultra-low power (vs A3P600-1FGG144)
- Higher speed grade (350MHz) (vs A3P600L-FG144)
- Lead-free and RoHS compliant (vs A3P600L-1FG144)
Design Notes
The A3P600L-1FGG144 operates with a core voltage of 1.2V to 1.5V. Ensure a stable power supply with adequate decoupling capacitors (e.g., 0.1uF and 10uF) placed close to each VCC pin. The Flash*Freeze mode can reduce power consumption to near-zero, but proper sequencing is required to avoid I/O contention. Refer to the Microchip datasheet for recommended power-up and power-down sequences.
For the 144-ball FBGA package, use a 4-layer or more PCB with a solid ground plane. Route high-speed signals with controlled impedance and minimize trace lengths. Place decoupling capacitors as close as possible to the power pins. The 1mm ball pitch requires precise soldering; ensure the PCB pad size matches the recommended land pattern from the datasheet.
The A3P600L-1FGG144 has low power consumption, but thermal management is still important. The 144-ball FBGA package has a thermal resistance that depends on PCB design. Provide adequate copper pour and thermal vias under the package to dissipate heat. For high utilization designs, consider airflow or a heatsink. The operating temperature range is [DATA_NEEDED], so verify it meets your application's requirements.
Compliance Information
RoHS compliant (Green) per Jotrin and FindIC. AEC-Q100 not applicable for this FPGA. Lead-free version available as A3P600L-1FGG144Y.