A3P600L-FG144I - 600K Gate ProASIC3L FPGA | Microchip Technology
MPN: A3P600L-FG144I β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $51.46 | $51.46 |
| 10 | $47.85 | $478.50 |
| 100 | $42.3 | $4,230.00 |
| 500 | $38.75 | $19,375.00 |
| 1,000 | $35.2 | $35,200.00 |
Drop-in alternatives for A3P600L-FG144I 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-FGG144I
β Drop-Inβ In Stock
$33.95 / Unit
View Datasheet βA3P600L-FG144
β Drop-Inβ In Stock
$48.34 / Unit
View Datasheet βA3P600-FG144I
β Drop-Inπ Reference alternative (not in catalog)
A3P600L-FGG144
β Drop-Inβ In Stock
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View Datasheet βA3P600L-FG144I Maximum Ratings & Electrical Characteristics
| Family | ProASIC3L |
| System Gates | 600000 |
| Logic Elements | 13824 |
| User I/Os | 97 |
| RAM Bits | 110592 |
| Core Voltage | 1.2 V to 1.5 V |
| Maximum Internal Frequency | 350 MHz |
| Technology | 130 nm Flash |
| Package | 144-LBGA (13x13 mm, 1.45 mm height, 1 mm pitch) |
| Mounting Type | Surface Mount |
| Operating Temperature | -40Β°C to +100Β°C (Industrial) |
| Number of Terminals | 144 |
| Package Code | LBGA |
| RoHS Status | Compliant |
| REACH Status | Compliant |
A3P600L-FG144I 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-FG144I is suitable for 6 applications: Industrial Control Systems, Automotive Electronics, Communications Infrastructure, Medical Devices, Aerospace and Defense, IoT and Smart Devices.
Industrial Control Systems
The A3P600L-FG144I is ideal for industrial control systems due to its low power consumption, instant-on capability, and wide operating temperature range (-40Β°C to +100Β°C). Its 600K gates and 97 I/Os allow implementation of motor control, PLC interfaces, and sensor processing. The flash-based architecture ensures secure and reliable operation in harsh environments, with no external configuration memory required. The device's 1.2V core voltage reduces power dissipation, making it suitable for distributed control nodes. With up to 350 MHz performance, it can handle real-time control loops and communication protocols. The 144-LBGA package is compact, fitting space-constrained industrial PCBs. Recommended companion products include the A3P600L-FGG144I for lead-free designs and the A3P600-FG144I for higher core voltage applications.
Recommended
Automotive Electronics
The A3P600L-FG144I is suitable for automotive electronics such as infotainment systems, advanced driver-assistance systems (ADAS), and body control modules. Its industrial temperature range (-40Β°C to +100Β°C) covers most automotive environments, and its low power consumption is beneficial for battery-powered vehicles. The flash-based FPGA provides instant-on operation, critical for safety systems that must start immediately. With 97 I/Os, it can interface with sensors, CAN transceivers, and displays. The 600K gates allow implementation of custom logic for signal processing and control. However, it is not AEC-Q100 qualified, so for strict automotive certification, consider the A3P600L-FGG144I or other qualified parts. The 144-LBGA package is robust for automotive PCB assemblies.
Recommended
Communications Infrastructure
The A3P600L-FG144I is well-suited for communications infrastructure, including base stations, routers, and network switches. Its 350 MHz performance and 97 I/Os enable implementation of protocol converters, packet processing, and interface bridging. The low power consumption is critical for remote and energy-efficient installations. The flash-based architecture provides secure configuration, protecting intellectual property in network equipment. The 600K gates allow integration of multiple functions, reducing board space and cost. The 144-LBGA package is suitable for high-density PCBs. For designs requiring lead-free compliance, the A3P600L-FGG144I is a direct drop-in. The device's instant-on capability ensures rapid startup in network equipment.
Recommended
Medical Devices
The A3P600L-FG144I is ideal for medical devices such as patient monitors, diagnostic equipment, and portable medical instruments. Its low power consumption extends battery life in portable devices, and its instant-on capability ensures immediate operation. The industrial temperature range (-40Β°C to +100Β°C) covers clinical environments. The flash-based FPGA provides secure and reliable configuration, essential for medical applications. With 600K gates and 97 I/Os, it can handle sensor interfacing, signal processing, and display control. The 144-LBGA package is compact for space-constrained medical PCBs. For lead-free requirements, the A3P600L-FGG144I is a drop-in alternative. The device's low static power reduces heat generation, improving reliability in enclosed medical housings.
Recommended
Aerospace and Defense
The A3P600L-FG144I is suitable for aerospace and defense applications, including avionics, satellite systems, and secure communications. Its flash-based architecture provides inherent security against reverse engineering, critical for defense systems. The industrial temperature range (-40Β°C to +100Β°C) covers many aerospace environments, though extreme conditions may require extended temperature grades. The low power consumption is beneficial for satellite and UAV applications where power is limited. With 600K gates and 97 I/Os, it can implement custom processing and interface logic. The instant-on capability ensures immediate operation in mission-critical systems. For lead-free requirements, the A3P600L-FGG144I is a drop-in alternative. The 144-LBGA package is rugged and suitable for harsh environments.
Recommended
IoT and Smart Devices
The A3P600L-FG144I is well-suited for IoT and smart devices, including smart home controllers, industrial IoT gateways, and wearable devices. Its low power consumption is essential for battery-powered IoT nodes, and its instant-on capability allows quick wake-up from sleep modes. The flash-based FPGA provides secure configuration, protecting IoT devices from unauthorized access. With 600K gates and 97 I/Os, it can handle sensor fusion, protocol handling, and edge processing. The 144-LBGA package is compact for small form-factor devices. The industrial temperature range (-40Β°C to +100Β°C) covers outdoor IoT deployments. For lead-free designs, the A3P600L-FGG144I is a drop-in alternative. The device's low static power extends battery life in always-on IoT applications.
Recommended
Recommended Products Summary
Engineering reference data for A3P600L-FG144I β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | A3P600L-FGG144I | A3P600L-FG144 | A3P600-FG144I | A3P600L-FGG144 | A3P600L-FG256I |
|---|---|---|---|---|---|---|
| Package | 144-LBGA | 144-LBGA | 144-LBGA | 144-LBGA | 144-LBGA | 256-FBGA |
| Brand | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology |
| System Gates | 600000 | 600000 | 600000 | 600000 | 600000 | 600000 |
| Logic Elements | 13824 | 13824 | 13824 | 13824 | 13824 | 13824 |
| User I/Os | 97 | 97 | 97 | 97 | 97 | 97 |
| Core Voltage | 1.2V to 1.5V | 1.2V to 1.5V | 1.2V to 1.5V | 1.5V | 1.2V to 1.5V | 1.2V to 1.5V |
| Max Frequency | 350 MHz | 350 MHz | 350 MHz | 350 MHz | 350 MHz | 350 MHz |
| Temperature Grade | Industrial (-40Β°C to +100Β°C) | Industrial (-40Β°C to +100Β°C) | Commercial (0Β°C to +85Β°C) | Industrial (-40Β°C to +100Β°C) | Commercial (0Β°C to +85Β°C) | Industrial (-40Β°C to +100Β°C) |
| RoHS | Compliant | Compliant | Compliant | Compliant | Compliant | Compliant |
Key Differentiators
- Low-power flash architecture (vs A3P600-FG144I)
- Industrial temperature grade (vs A3P600L-FG144)
- Lead-free option available (vs A3P600L-FG144I)
Design Notes
The A3P600L-FG144I requires a core voltage of 1.2V to 1.5V. Use a low-dropout regulator (LDO) or a DC-DC converter to provide a clean supply. Place 0.1uF and 10uF decoupling capacitors close to each VCC pin to minimize noise. The flash-based architecture has low static power, but dynamic power scales with logic activity and clock frequency. Estimate power using Microchip's power calculator for accurate thermal management.
For the 144-LBGA package, ensure proper PCB layout with controlled impedance traces for high-speed I/Os. Use a 4-layer or more PCB with dedicated power and ground planes. Place decoupling capacitors on the bottom side directly under the BGA to minimize inductance. Follow the manufacturer's layout guidelines for BGA routing, including via-in-pad techniques if necessary.
The A3P600L-FG144I has a maximum junction temperature of 125Β°C. Estimate power dissipation using the formula P = I_core * V_core + I_io * V_io. For a typical design with 50% logic utilization at 100 MHz, power dissipation is approximately 0.5W. Use thermal vias under the BGA to conduct heat to the ground plane. Ensure adequate airflow or heatsinking for high-power designs.
Compliance Information
RoHS and REACH compliance confirmed from distributor data. Not AEC-Q100 qualified. Lead-free status based on FGG variant availability.