M1AFS600-1FG256 - Fusion FPGA, 600K Gates | Microchip
MPN: M1AFS600-1FG256 β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $86.44 | $86.44 |
| 10 | $82.12 | $821.20 |
| 100 | $77.8 | $7,780.00 |
| 500 | $73.47 | $36,735.00 |
| 1,000 | $69.15 | $69,150.00 |
Drop-in alternatives for M1AFS600-1FG256 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:
M1AFS600-1FGG256
β Drop-Inπ Reference alternative (not in catalog)
M1AFS600-2FG256
β Drop-Inπ Reference alternative (not in catalog)
M1AFS600-1FG484
β Drop-Inβ In Stock
$172 / Unit
View Datasheet βM1AFS600-1FGG484
β Drop-Inβ In Stock
$59.5 / Unit
View Datasheet βM1AFS600-2FGG484
β Drop-Inπ Reference alternative (not in catalog)
M1AFS600-1FG256K
β Drop-Inπ Reference alternative (not in catalog)
M1AFS600-1FG256 Maximum Ratings & Electrical Characteristics
| Series | Fusion |
| Total RAM Bits | 110592 |
| Number of I/O | 119 |
| Number of Gates | 600000 |
| Voltage - Supply | 1.425V ~ 1.575V |
| Mounting Type | Surface Mount |
| Package / Case | 256-LBGA |
| Supplier Device Package | 256-FPBGA (17x17) |
| Operating Temperature | 0Β°C ~ 85Β°C (TJ) |
| RoHS Status | RoHS non-compliant |
| Manufacturer Lead Time | 16 weeks |
| Product Status | Active |
| Packaging | Tray |
| Core Voltage | 1.5V |
| Technology | 130nm |
| Maximum Frequency | 1282.05MHz |
M1AFS600-1FG256 Pin Configuration
| Pin 1 | IO β User I/O |
| Pin 2 | IO β User I/O |
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| Pin 120 | VCC β Core supply voltage |
| Pin 121 | GND β Ground |
| Pin 122 | VCC β Core supply voltage |
| Pin 123 | GND β Ground |
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| Pin 125 | GND β Ground |
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| Pin 130 | VCC β Core supply voltage |
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| Pin 132 | VCC β Core supply voltage |
| Pin 133 | GND β Ground |
| Pin 134 | VCC β Core supply voltage |
| Pin 135 | GND β Ground |
| Pin 136 | VCC β Core supply voltage |
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| Pin 196 | VCC β Core supply voltage |
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| Pin 200 | VCC β Core supply voltage |
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| Pin 208 | VCC β Core supply voltage |
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| Pin 210 | VCC β Core supply voltage |
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| Pin 219 | GND β Ground |
| Pin 220 | VCC β Core supply voltage |
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| Pin 222 | VCC β Core supply voltage |
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| Pin 225 | GND β Ground |
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| Pin 256 | GND β Ground |
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
M1AFS600-1FG256 is suitable for 6 applications: Power Management, Smart Battery Charging, Clock Generation and Management, Motor Control, Industrial Automation, Medical Devices.
Power Management
The M1AFS600-1FG256 integrates configurable analog blocks and flash memory, making it ideal for power management applications such as voltage monitoring, sequencing, and smart battery charging. Its 1.5V core and low power consumption enable efficient power control. The device can implement digital power controllers with analog feedback loops, reducing component count and board space. According to the Fusion datasheet, it is designed for power management, smart battery charging, and clock generation. The configurable analog front-end allows precise voltage and current sensing, while the flash memory stores calibration data and configuration. This integration simplifies designs and improves reliability.
Recommended
Smart Battery Charging
The M1AFS600-1FG256 is well-suited for smart battery charging applications due to its integrated analog blocks and flash memory. It can implement charge algorithms, monitor battery voltage and current, and communicate with a host controller. The configurable analog front-end provides accurate sensing, while the flash memory stores charge profiles and calibration data. Its low power consumption is beneficial for battery-powered devices. The device supports multiple charging protocols and can be reprogrammed for different battery chemistries. This flexibility makes it a cost-effective solution for portable electronics, electric vehicles, and energy storage systems.
Recommended
Clock Generation and Management
The M1AFS600-1FG256 includes comprehensive clock generation and management circuitry, including PLLs and clock conditioning. This makes it ideal for applications requiring precise clock synthesis, such as communication systems, data converters, and digital signal processing. The device can generate multiple clock domains with low jitter, and its flash-based configuration ensures fast startup. The integrated analog blocks can also be used for clock monitoring and synchronization. This reduces the need for external clock ICs, simplifying board design and reducing cost.
Recommended
Motor Control
The M1AFS600-1FG256 is suitable for motor control applications, including brushless DC (BLDC) and AC induction motors. Its configurable analog blocks can interface with current sensors and encoders, while the programmable logic implements PWM generation and commutation algorithms. The flash memory stores motor parameters and control firmware. The device's high-speed performance and deterministic response make it ideal for real-time control. It also supports safety features such as overcurrent and overtemperature protection. This integration reduces component count and improves system reliability.
Recommended
Industrial Automation
The M1AFS600-1FG256 is well-suited for industrial automation applications such as PLCs, robotics, and process control. Its mixed-signal integration allows direct interfacing with analog sensors and actuators, while the programmable logic implements control algorithms and communication protocols. The flash-based configuration provides instant-on and high security, protecting intellectual property. The device operates over a commercial temperature range (0Β°C to 85Β°C) and can be extended with industrial-grade variants. Its low power consumption and small footprint make it ideal for space-constrained industrial equipment.
Recommended
Medical Devices
The M1AFS600-1FG256 is suitable for medical devices such as patient monitors, diagnostic equipment, and portable medical instruments. Its configurable analog blocks can interface with biosensors, while the programmable logic implements signal processing and data acquisition. The flash memory stores calibration data and device configuration. The device's low power consumption is critical for battery-powered devices. Its high reliability and security features make it suitable for medical applications. The integration of analog and digital functions reduces board space and improves system accuracy.
Recommended
Recommended Products Summary
Engineering reference data for M1AFS600-1FG256 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | M1AFS600-1FGG256 | M1AFS600-2FG256 | M1AFS600-1FG484 |
|---|---|---|---|---|
| Package | 256-LBGA | 256-LBGA | 256-LBGA | 484-LBGA |
| Brand | Microchip Technology | Microchip Technology | Microchip Technology | Microchip Technology |
| Number of Gates | 600000 | 600000 | 600000 | 600000 |
| Number of I/O | 119 | 119 | 119 | [DATA_NEEDED] |
| Total RAM Bits | 110592 | 110592 | 110592 | 110592 |
| Voltage - Supply | 1.425V ~ 1.575V | 1.425V ~ 1.575V | 1.425V ~ 1.575V | 1.425V ~ 1.575V |
| Operating Temperature | 0Β°C ~ 85Β°C | 0Β°C ~ 85Β°C | 0Β°C ~ 85Β°C | 0Β°C ~ 85Β°C |
| RoHS Status | Non-compliant | Compliant | Non-compliant | Non-compliant |
Key Differentiators
- Integrated ARM Cortex-M1 processor (vs AFS600-1FG256)
- Mixed-signal integration (vs A3P600-1FG256)
- Flash-based configuration (vs SRAM-based FPGAs)
Design Notes
The M1AFS600-1FG256 requires a 1.5V core supply (1.425V to 1.575V). Use a low-dropout regulator or DC-DC converter with adequate decoupling. Place 0.1uF and 10uF capacitors close to each VCC pin. The flash-based FPGA has low static power, but dynamic power scales with frequency and logic utilization. Estimate power using Microchip's power calculator.
For the 256-LBGA package, ensure proper PCB layout with a solid ground plane and thermal vias under the package. The ball pitch is 1.0mm, so use fine-pitch routing techniques. Follow the manufacturer's layout guidelines for BGA packages to avoid solder joint issues. Consider using a 4-layer or more PCB for signal integrity.
The M1AFS600-1FG256 is RoHS non-compliant. If your design requires RoHS compliance, use the M1AFS600-1FGG256 instead. Also, ensure the 1.5V supply is within tolerance; exceeding 1.575V can damage the device. The device is flash-based, so no external configuration memory is needed, but ensure proper programming voltage and timing.
Compliance Information
RoHS non-compliant per Microchip USA. For RoHS compliant version, use M1AFS600-1FGG256.