10M08SCM153C8G - MAX 10 FPGA 8K LE 153-VFBGA | Intel
MPN: 10M08SCM153C8G ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $8.5 | $8.50 |
| 10 | $7.65 | $76.50 |
| 100 | $6.8 | $680.00 |
| 500 | $6.1 | $3,050.00 |
| 1,000 | $5.45 | $5,450.00 |
Drop-in alternatives for 10M08SCM153C8G — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Quick Comparison Tool — Select alternative parts for side-by-side comparison:
10M08SCM153I7G
✅ Drop-In✓ In Stock
$7.4 / Unit
View Datasheet →10M08SAM153C8G
✅ Drop-In✓ In Stock
$9.1 / Unit
View Datasheet →10M08SAM153I7G
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$7.4 / Unit
View Datasheet →10M04SCM153C8G
✅ Drop-In✓ In Stock
$7.49 / Unit
View Datasheet →10M04SCM153I7G
✅ Drop-In✓ In Stock
$9.2 / Unit
View Datasheet →10M08SCM153C8G Maximum Ratings & Electrical Characteristics
| Family | MAX 10 |
| Logic Elements (LE) | 8,000 |
| Block Memory (M9K) | 32 blocks (378 Kbits total) |
| User Flash Memory | 387,072 bits (1,374 Kbits / 172 KB) |
| Maximum User I/Os | 112 |
| Process Technology | 55 nm |
| Supply Voltage | 3.0 V / 3.3 V |
| Package | 153-VFBGA (MBGA), 8x8 mm, 0.5 mm pitch |
| Temperature Grade | Commercial (0C to 85C) |
| Speed Grade | 8 |
| Configuration Memory | On-die flash (non-volatile) |
| Integrated ADC | 12-bit SAR ADC (MAX 10 feature) |
| Multiplier (18x18) | 16 |
| PLLs | 2 |
| Mounting Type | Surface Mount (BGA) |
| RoHS Status | Compliant (Pb-free) |
| Lead-Free / Halogen-Free | Yes |
10M08SCM153C8G 153-vfbga (mbga), 8x8 mm, 0.5 mm pitch Pin Configuration Guide
Complete pinout information for 10M08SCM153C8G (153-vfbga (mbga), 8x8 mm, 0.5 mm pitch package). This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for 10M08SCM153C8G.
Refer to the datasheet for full pin configuration.
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
10M08SCM153C8G is suitable for 6 applications: Industrial I/O Bridging and Protocol Conversion, Motor Control Co-Processor, Low-Cost Video Processing and Display Bridging, USB Type-C Interface Expansion, Sensor Aggregation and Edge Processing Hub, ASIC Prototyping and Pre-Silicon Emulation.
Industrial I/O Bridging and Protocol Conversion
The 10M08SCM153C8G fits industrial I/O bridging because its 8,000 logic elements, 112 user I/Os, and on-die flash configuration deliver deterministic parallel protocol translation without firmware overhead. The MAX 10 fabric can map SPI-to-UART, I2C-to-parallel, or RS-485 to Ethernet bridging on a single chip. Its 12-bit SAR ADC supports 1 MSPS analog monitoring of industrial sensor rails. With 387 Kbits user flash, bridge configuration and lookup tables store directly on-chip, eliminating external boot PROMs that add BOM cost in PLC backplanes and remote I/O modules. Commercial 0-85C temperature rating fits factory-floor enclosures.
Recommended
Motor Control Co-Processor
MAX 10 FPGAs serve as dedicated motor control co-processors because the 10M08SCM153C8G integrates 16 18x18 multipliers and 32 M9K memory blocks ideal for field-oriented control (FOC) PWM generation and current-loop math. The integrated 12-bit ADC samples phase currents at up to 1 MSPS, synchronizing directly with the fabric's PLLs for sub-microsecond control loop timing. Engineers use the 8K LE fabric to implement SVPWM, sine drive, or trapezoidal commutation alongside a host MCU that handles supervisory control. The non-volatile flash eliminates cold-start delays in motor drive startups.
Recommended
Low-Cost Video Processing and Display Bridging
The 10M08SCM153C8G fits low-cost video bridging because its 8,000 LEs handle LVDS or CMOS video pipeline processing, color-space conversion, and resolution scaling within a tight BOM. With 112 user I/Os, the device can interface to parallel RGB panels, MIPI DSI bridge chips, or HDMI transmitters. The 387 Kbits on-die flash stores configuration and frame-buffer tables, allowing sub-100 ms boot for instant-on display applications. Designers use the MAX 10 fabric to implement custom timing controllers, gamma correction, and overlay composition in industrial HMI and medical imaging preview screens.
Recommended
USB Type-C Interface Expansion
The 10M08SCM153C8G works as a USB Type-C interface expansion companion because its 112 user I/Os and flexible I/O banks support USB Type-C SBU/AUX lines, sideband signals, and PD communication alongside the main USB-PHY. The fabric implements custom billboard devices, alternate-mode controllers, and PD message inspection without an external MCU. MAX 10 non-volatile boot enables the billboard descriptor to be available immediately at USB enumeration. Commercial 0-85C temperature rating is sufficient for consumer peripherals and docking stations.
Recommended
Sensor Aggregation and Edge Processing Hub
The 10M08SCM153C8G fits sensor aggregation hubs because its 12-bit SAR ADC digitizes analog sensor outputs while the 8K-LE fabric performs on-chip digital filtering, threshold detection, and event routing. With 387 Kbits user flash, calibration coefficients and sensor identification tables store locally, supporting hot-swap and auto-configuration across multiple sensor types. The 32 M9K blocks buffer sample data before forwarding to an MCU or SoC over SPI/I2C. Designers leverage the deterministic fabric latency to implement sensor-fusion preprocessing that offloads an application processor in IoT edge nodes.
Recommended
ASIC Prototyping and Pre-Silicon Emulation
Engineers use the 10M08SCM153C8G for ASIC prototyping because the 8,000-LE MAX 10 fabric plus 378 Kbits block RAM fits small to medium ASIC RTL blocks for design validation before tape-out. The non-volatile flash stores multiple design revisions for A/B comparison, and the integrated ADC emulates mixed-signal testbench stimulus. The 153-VFBGA MBGA package allows high-density board routing alongside companion ASIC prototypes on the same PCB. Quartus Prime supports incremental compilation, enabling rapid design iteration across the 8K-LE capacity within the MAX 10 tool flow.
Recommended
Recommended Products Summary
Engineering reference data for 10M08SCM153C8G — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10M08SCM153I7G | 10M08SAM153C8G | 10M08SAM153I7G | 10M04SCM153C8G | 10M04SCM153I7G |
|---|---|---|---|---|---|---|
| Brand | Intel | Intel | Intel | Intel | Intel | Intel |
| Package | 153-VFBGA (MBGA) 8x8 mm | 153-VFBGA (MBGA) 8x8 mm - same | 153-VFBGA (MBGA) 8x8 mm - same | 153-VFBGA (MBGA) 8x8 mm - same | 153-VFBGA (MBGA) 8x8 mm - same | 153-VFBGA (MBGA) 8x8 mm - same |
| Logic Elements | 8,000 | 8,000 | 8,000 | 8,000 | 4,000 (-50%) | 4,000 (-50%) |
| User Flash (bits) | 387,072 | 387,072 | 387,072 | 387,072 | 295,296 (-24%) | 295,296 (-24%) |
| Block Memory (M9K) | 32 blocks (378 Kbits) | 32 blocks (378 Kbits) | 32 blocks (378 Kbits) | 32 blocks (378 Kbits) | 20 blocks (234 Kbits) | 20 blocks (234 Kbits) |
| Temperature Grade | Commercial 0C to 85C | Industrial -40C to 100C | Commercial 0C to 85C | Industrial -40C to 100C | Commercial 0C to 85C | Industrial -40C to 100C |
| Integrated ADC | 12-bit SAR ADC | 12-bit SAR ADC | No ADC | No ADC | 12-bit SAR ADC | 12-bit SAR ADC |
| DSP Blocks (18x18 Multipliers) | 16 | 16 | 16 | 16 | 16 | 16 |
| Maximum User I/Os | 112 | 112 | 112 | 112 | 112 | 112 |
| Supply Voltage | 3.0 V / 3.3 V | 3.0 V / 3.3 V | 3.0 V / 3.3 V | 3.0 V / 3.3 V | 3.0 V / 3.3 V | 3.0 V / 3.3 V |
Key Differentiators
- Industrial temperature grade available in identical footprint (vs 10M08SCM153C8G (commercial) vs 10M08SCM153I7G (industrial))
- Higher logic density than 10M04 variant in same footprint (vs 10M08SCM153C8G vs 10M04SCM153C8G)
- Integrated 12-bit SAR ADC vs SA variant without ADC (vs 10M08SCM153C8G vs 10M08SAM153C8G)
Design Notes
The 153-VFBGA uses a 0.5 mm ball pitch on an 8x8 mm body. Follow the JEDEC MS-034-compatible land pattern with non-solder-mask-defined (NSMD) pads for best BGA solder joint reliability. Use at least 4 layers with continuous ground planes under the FPGA. Place 0.1 uF and 10 uF decoupling capacitors within 100 mils of each power pin pair (VCCINT/VCCA, VCCIO/VCCD_PLL) and add 1 nF high-frequency bypass at the BGA vias. Thermal vias in a 4x4 grid under the center balls improve heat dissipation to inner ground planes. For board-level reliability, Intel's AN-822 reference layout details stackup and via recommendations.
MAX 10 devices require multiple supply rails: VCCINT (core, 3.0/3.3 V), VCCA (analog ADC, 3.0/3.3 V), VCCIO (I/O banks, 3.3 V), VCCD_PLL (PLL digital, 3.0/3.3 V), and VCCBAT (battery backup for RTC/user flash, 3.0 V). Per the Intel MAX 10 datasheet, power-on sequencing requires VCCIO >= VCCINT before VCCBAT is applied. Use a sequencer IC (e.g. LTC2923 or similar) or a simple RC network on the enable pins of each regulator. Estimated typical active current for the 10M08 density at 25 MHz logic toggle rate is 50-100 mA; estimate quiescent current at 25 mA on VCCINT.
For LVDS, LVPECL, or sub-100 MHz parallel bus interfaces routed from the 153-VFBGA, apply 100-ohm differential intra-pair matching and use length-matching within 150 mils on inner stripline layers. The MAX 10 fabric supports LVDS with external resistor networks on I/O banks 5 and 6 in this package variant. For DDR3 or LPDDR2 external memory interfaces, use the Quartus Prime Timing Analyzer to verify setup/hold margins and route byte-lane signals in matched groups. Avoid routing high-speed signals over gaps in reference planes.
Do not confuse the 10M08SCM153 with the 10M08DCF484 or 10M08SAU324 - these are different packages with completely different footprints. The 'M153' device code guarantees only the 153-VFBGA pinout. When upgrading from commercial (C8G) to industrial (I7G) temperature grade, verify the project I/O timing constraints still close with the I7G speed-grade timing model. The 'C' vs 'I' prefix is a temperature grade marker, not a speed grade. For JTAG programming, use a 10 kohm pull-up on nCONFIG and a 1 kohm pull-up on nSTATUS per Intel recommendations.
Compliance Information
Pb-free / RoHS compliant per Intel product page. Commercial temperature grade (0-85C) - not AEC-Q100 qualified. Choose 10M08SCM153I7G for industrial temperature grade.