Microchip Technology

M1AFS600-1FG256 - Fusion FPGA, 600K Gates | Microchip

MPN: M1AFS600-1FG256 βœ“ Active
In Stock Ships in 1-3 business days
1.425V ~ 1.575V Vdss 256-LBGA Package 1282.05MHz Speed
From $69.15 USD / Unit
MOQ: 1 |
Price updated: 2026-08-31
Volume Pricing
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
ℹ️ All prices are in USD

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

βœ… Drop-In
πŸ“¦ 256-LBGA
Lead-free finish, RoHS compliant; same package and pinout

πŸ“‹ Reference alternative (not in catalog)

M1AFS600-2FG256

βœ… Drop-In
πŸ“¦ 256-LBGA
Speed grade -2 (faster) vs -1; same package and pinout

πŸ“‹ Reference alternative (not in catalog)

M1AFS600-1FG484

βœ… Drop-In
Microchip Technology
πŸ“¦ 256-LBGA
Fusion Β· 600K Β· 172 Β· 110592 Β· 1.5V Β· 130nm Β· 484-BGA (FBGA) Β· Surface Mount

βœ“ In Stock

$172 / Unit

View Datasheet β†’

M1AFS600-1FGG484

βœ… Drop-In
Microchip Technology
πŸ“¦ 256-LBGA
Fusion Β· 600K Β· 172 Β· 110592 Β· 484-BGA (FBGA) Β· 1.5V Β· 1282.05 MHz Β· 130nm

βœ“ In Stock

$59.5 / Unit

View Datasheet β†’

M1AFS600-2FGG484

βœ… Drop-In
πŸ“¦ 256-LBGA
Different package (484-ball) - not pin-compatible; speed grade -2

πŸ“‹ Reference alternative (not in catalog)

M1AFS600-1FG256K

βœ… Drop-In
πŸ“¦ 256-LBGA
Industrial temperature grade (K suffix) vs commercial; same package and pinout

πŸ“‹ 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

BGA-256 Package Pinout Diagram BGA-256 17x17mm, 16x16, P1.0mm, JEDEC MO-192. A1 BGA-256 16x16 grid
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 IO β€” User I/O
Pin 99 IO β€” User I/O
Pin 100 IO β€” User I/O
Pin 101 IO β€” User I/O
Pin 102 IO β€” User I/O
Pin 103 IO β€” User I/O
Pin 104 IO β€” User I/O
Pin 105 IO β€” User I/O
Pin 106 IO β€” User I/O
Pin 107 IO β€” User I/O
Pin 108 IO β€” User I/O
Pin 109 IO β€” User I/O
Pin 110 IO β€” User I/O
Pin 111 IO β€” User I/O
Pin 112 IO β€” User I/O
Pin 113 IO β€” User I/O
Pin 114 IO β€” User I/O
Pin 115 IO β€” User I/O
Pin 116 IO β€” User I/O
Pin 117 IO β€” User I/O
Pin 118 IO β€” User I/O
Pin 119 IO β€” User I/O
Pin 120 VCC β€” Core supply voltage
Pin 121 GND β€” Ground
Pin 122 VCC β€” Core supply voltage
Pin 123 GND β€” Ground
Pin 124 VCC β€” Core supply voltage
Pin 125 GND β€” Ground
Pin 126 VCC β€” Core supply voltage
Pin 127 GND β€” Ground
Pin 128 VCC β€” Core supply voltage
Pin 129 GND β€” Ground
Pin 130 VCC β€” Core supply voltage
Pin 131 GND β€” Ground
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
Pin 137 GND β€” Ground
Pin 138 VCC β€” Core supply voltage
Pin 139 GND β€” Ground
Pin 140 VCC β€” Core supply voltage
Pin 141 GND β€” Ground
Pin 142 VCC β€” Core supply voltage
Pin 143 GND β€” Ground
Pin 144 VCC β€” Core supply voltage
Pin 145 GND β€” Ground
Pin 146 VCC β€” Core supply voltage
Pin 147 GND β€” Ground
Pin 148 VCC β€” Core supply voltage
Pin 149 GND β€” Ground
Pin 150 VCC β€” Core supply voltage
Pin 151 GND β€” Ground
Pin 152 VCC β€” Core supply voltage
Pin 153 GND β€” Ground
Pin 154 VCC β€” Core supply voltage
Pin 155 GND β€” Ground
Pin 156 VCC β€” Core supply voltage
Pin 157 GND β€” Ground
Pin 158 VCC β€” Core supply voltage
Pin 159 GND β€” Ground
Pin 160 VCC β€” Core supply voltage
Pin 161 GND β€” Ground
Pin 162 VCC β€” Core supply voltage
Pin 163 GND β€” Ground
Pin 164 VCC β€” Core supply voltage
Pin 165 GND β€” Ground
Pin 166 VCC β€” Core supply voltage
Pin 167 GND β€” Ground
Pin 168 VCC β€” Core supply voltage
Pin 169 GND β€” Ground
Pin 170 VCC β€” Core supply voltage
Pin 171 GND β€” Ground
Pin 172 VCC β€” Core supply voltage
Pin 173 GND β€” Ground
Pin 174 VCC β€” Core supply voltage
Pin 175 GND β€” Ground
Pin 176 VCC β€” Core supply voltage
Pin 177 GND β€” Ground
Pin 178 VCC β€” Core supply voltage
Pin 179 GND β€” Ground
Pin 180 VCC β€” Core supply voltage
Pin 181 GND β€” Ground
Pin 182 VCC β€” Core supply voltage
Pin 183 GND β€” Ground
Pin 184 VCC β€” Core supply voltage
Pin 185 GND β€” Ground
Pin 186 VCC β€” Core supply voltage
Pin 187 GND β€” Ground
Pin 188 VCC β€” Core supply voltage
Pin 189 GND β€” Ground
Pin 190 VCC β€” Core supply voltage
Pin 191 GND β€” Ground
Pin 192 VCC β€” Core supply voltage
Pin 193 GND β€” Ground
Pin 194 VCC β€” Core supply voltage
Pin 195 GND β€” Ground
Pin 196 VCC β€” Core supply voltage
Pin 197 GND β€” Ground
Pin 198 VCC β€” Core supply voltage
Pin 199 GND β€” Ground
Pin 200 VCC β€” Core supply voltage
Pin 201 GND β€” Ground
Pin 202 VCC β€” Core supply voltage
Pin 203 GND β€” Ground
Pin 204 VCC β€” Core supply voltage
Pin 205 GND β€” Ground
Pin 206 VCC β€” Core supply voltage
Pin 207 GND β€” Ground
Pin 208 VCC β€” Core supply voltage
Pin 209 GND β€” Ground
Pin 210 VCC β€” Core supply voltage
Pin 211 GND β€” Ground
Pin 212 VCC β€” Core supply voltage
Pin 213 GND β€” Ground
Pin 214 VCC β€” Core supply voltage
Pin 215 GND β€” Ground
Pin 216 VCC β€” Core supply voltage
Pin 217 GND β€” Ground
Pin 218 VCC β€” Core supply voltage
Pin 219 GND β€” Ground
Pin 220 VCC β€” Core supply voltage
Pin 221 GND β€” Ground
Pin 222 VCC β€” Core supply voltage
Pin 223 GND β€” Ground
Pin 224 VCC β€” Core supply voltage
Pin 225 GND β€” Ground
Pin 226 VCC β€” Core supply voltage
Pin 227 GND β€” Ground
Pin 228 VCC β€” Core supply voltage
Pin 229 GND β€” Ground
Pin 230 VCC β€” Core supply voltage
Pin 231 GND β€” Ground
Pin 232 VCC β€” Core supply voltage
Pin 233 GND β€” Ground
Pin 234 VCC β€” Core supply voltage
Pin 235 GND β€” Ground
Pin 236 VCC β€” Core supply voltage
Pin 237 GND β€” Ground
Pin 238 VCC β€” Core supply voltage
Pin 239 GND β€” Ground
Pin 240 VCC β€” Core supply voltage
Pin 241 GND β€” Ground
Pin 242 VCC β€” Core supply voltage
Pin 243 GND β€” Ground
Pin 244 VCC β€” Core supply voltage
Pin 245 GND β€” Ground
Pin 246 VCC β€” Core supply voltage
Pin 247 GND β€” Ground
Pin 248 VCC β€” Core supply voltage
Pin 249 GND β€” Ground
Pin 250 VCC β€” Core supply voltage
Pin 251 GND β€” Ground
Pin 252 VCC β€” Core supply voltage
Pin 253 GND β€” Ground
Pin 254 VCC β€” Core supply voltage
Pin 255 GND β€” Ground
Pin 256 GND β€” Ground

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for M1AFS600-1FG256 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

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.

πŸ”‹

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.

πŸ•

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.

🏭

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.

🏭

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.

πŸ’Š

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 Products Summary

M1AFS600-1FGG484 Microchip Technology Used in: Power Management, Motor Control M1AFS1500-1FG484K Microchip Technology Used in: Power Management, Motor Control M1AFS600-1FGG256 Lead-free version for RoHS-compliant designs Used in: Smart Battery Charging, Medical Devices M1AFS250-2FG256 Microchip Technology Used in: Smart Battery Charging M1AFS600-2FG256 Faster speed grade for higher clock frequencies Used in: Clock Generation and Management M1AFS1500-2FG676 Microchip Technology Used in: Clock Generation and Management M1AFS600-1FG256K Industrial temperature grade for harsh environments Used in: Industrial Automation M1AFS1500-1FG676 Microchip Technology Used in: Industrial Automation M1AFS250-1FGG256 Microchip Technology Used in: Medical Devices
What is the M1AFS600-1FG256?
The M1AFS600-1FG256 is a Fusion mixed-signal FPGA from Microchip Technology (formerly Microsemi) with 600,000 system gates, integrating configurable analog, flash memory, and programmable logic. It operates at 1.5V core voltage and comes in a 256-ball LBGA package. According to the Fusion Family datasheet, it supports 119 user I/Os and 110,592 bits of RAM.
What is the price of M1AFS600-1FG256?
As of 2026-08-31, the M1AFS600-1FG256 is priced at approximately $86.44 for a single unit at LCSC Electronics. Volume pricing may be lower; for example, at quantity 1000 the price drops to around $69.15. Prices vary by distributor and availability, so check current quotes from DigiKey, Mouser, and Octopart.
Where can I buy M1AFS600-1FG256?
The M1AFS600-1FG256 is available from several distributors including LCSC, DigiKey, Mouser, and Octopart. LCSC lists it in stock with a price from $86.4358. DigiKey and Mouser also carry it, and Octopart aggregates pricing from 5 distributors. Check these sources for current availability and lead times.
What is the lead time for M1AFS600-1FG256?
The manufacturer lead time for M1AFS600-1FG256 is approximately 16 weeks, as reported by Microchip USA. This is a typical lead time for FPGAs from Microchip. Actual availability may vary by distributor, so it is advisable to check stock levels at LCSC, DigiKey, or Mouser for immediate needs.
Is M1AFS600-1FG256 in stock?
Yes, the M1AFS600-1FG256 is listed as in-stock at LCSC Electronics, with a price from $86.4358. Other distributors like DigiKey and Mouser also show availability, but stock levels can change rapidly. For the most current stock status, check the distributor websites directly.
What is the difference between M1AFS600-1FG256 and AFS600-1FG256?
The M1AFS600-1FG256 includes an embedded ARM Cortex-M1 processor, while the AFS600-1FG256 does not. Both are Fusion FPGAs with 600K system gates and the same 256-LBGA package. The M1 variant adds a hard ARM core, making it suitable for SoC designs. According to Microchip, M1 parts denote Fusion FPGAs with the ARM Cortex-M1.
What is the difference between M1AFS600-1FG256 and M1AFS600-2FG256?
The M1AFS600-1FG256 has a speed grade of -1, while the M1AFS600-2FG256 has a speed grade of -2. The -2 speed grade is faster, offering higher maximum operating frequency. Both have the same 600K gates and 256-LBGA package. The -1 speed grade is more common and may be more readily available.
When should I choose M1AFS600-1FG256 over M1AFS600-2FG256?
Choose the M1AFS600-1FG256 when your design does not require the maximum speed and you want to optimize cost or availability. The -1 speed grade is typically less expensive and more widely stocked. If your application demands higher performance, such as high-speed signal processing, the -2 speed grade may be necessary.
What is the best drop-in replacement for M1AFS600-1FG256?
The best drop-in replacement for M1AFS600-1FG256 is the M1AFS600-1FGG256, which is pin-compatible and has the same 256-LBGA package. The -FGG variant uses a lead-free finish, making it RoHS compliant, while the -FG variant is RoHS non-compliant. Both have identical logic resources and I/O count.
Can M1AFS600-1FG256 be replaced by M1AFS600-1FGG256?
Yes, the M1AFS600-1FGG256 is a drop-in replacement for M1AFS600-1FG256. Both are Fusion FPGAs with 600K gates, 119 I/Os, and the same 256-LBGA package. The only difference is the lead-free finish, which makes the -FGG variant RoHS compliant. Verify the pinout and electrical specifications in the datasheet before substitution.
Where can I download the M1AFS600-1FG256 datasheet PDF?
The M1AFS600-1FG256 datasheet is available from Mouser at https://www.mouser.com/datasheet/2/268/Microsemi_Fusion_Family_of_Mixed_Signal_FPGAs_Data-1592809.pdf. It is also available on the Microchip product page and from other distributors like DigiKey and LCSC. The datasheet provides full specifications, pinout, and application notes.
Where can I find the M1AFS600-1FG256 pinout?
The M1AFS600-1FG256 pinout is detailed in the Fusion Family datasheet, available from Mouser and Microchip. The 256-ball LBGA package has a specific ball map that is documented in the datasheet. You can also find pinout diagrams on distributor pages like LCSC and Octopart.
What are the key specifications of M1AFS600-1FG256 that engineers should know?
The M1AFS600-1FG256 is a Fusion mixed-signal FPGA with 600,000 system gates, 119 user I/Os, and 110,592 bits of RAM. It operates from a 1.5V core supply (1.425V to 1.575V) and is available in a 256-LBGA package. It integrates configurable analog, flash memory, and an ARM Cortex-M1 processor, making it ideal for mixed-signal applications.
Hey Google, what can replace M1AFS600-1FG256?
The M1AFS600-1FG256 can be replaced by the M1AFS600-1FGG256, which is a pin-compatible drop-in replacement with a lead-free finish. Other alternatives include the M1AFS600-2FG256 (faster speed grade) and the M1AFS600-1FG484 (larger package with more I/Os). Always verify pin compatibility and electrical specifications before substitution.
Is M1AFS600-1FG256 the same as M1AFS600-1FGG256?
No, the M1AFS600-1FG256 and M1AFS600-1FGG256 are not identical. The -FG variant is RoHS non-compliant, while the -FGG variant is lead-free and RoHS compliant. They share the same package, pinout, and logic resources, so the -FGG is a drop-in replacement for the -FG, but they differ in environmental compliance.
What is the best Microchip equivalent for M1AFS600-1FG256?
The best Microchip equivalent for M1AFS600-1FG256 is the M1AFS600-1FGG256, which is a lead-free, RoHS-compliant version with the same 256-LBGA package and identical logic resources. For higher speed, the M1AFS600-2FG256 is also a drop-in alternative. Both are from the same Fusion family and are pin-compatible.

Engineering reference data for M1AFS600-1FG256 β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the M1AFS600-1FG256 when you need a mixed-signal FPGA with an embedded ARM Cortex-M1 processor, 600K gates, and 119 I/Os in a 256-LBGA package. It is ideal for applications requiring analog and digital integration, such as power management, motor control, and smart battery charging. If you require RoHS compliance, select the M1AFS600-1FGG256. For higher speed, consider the M1AFS600-2FG256. If you need more I/Os, the M1AFS600-1FG484 offers a larger package. For industrial temperature ranges, use the M1AFS600-1FG256K. The M1AFS600-1FG256 is not recommended for designs that do not need the ARM core or mixed-signal capabilities; a simpler FPGA like the A3P600 may be more cost-effective.

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
REACH
Unknown
AEC-Q100
Not Applicable
Lead Free
No
Halogen Free
Unknown
Conflict Minerals
Unknown

RoHS non-compliant per Microchip USA. For RoHS compliant version, use M1AFS600-1FGG256.

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

Related Searches

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Related Components & Terms

Microchip Technology M1AFS600-1FG256 Fusion FPGA FPGA Field Programmable Gate Array ARM Cortex-M1 600K system gates 256-LBGA LBGA BGA 1.5V configurable analog flash memory mixed-signal RoHS
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