10M08SCM153I7G - MAX 10 FPGA 8K LE, 153-MBGA | Intel
MPN: 10M08SCM153I7G ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $12.5 | $12.50 |
| 10 | $11.25 | $112.50 |
| 100 | $9.85 | $985.00 |
| 500 | $8.6 | $4,300.00 |
| 1,000 | $7.4 | $7,400.00 |
Drop-in alternatives for 10M08SCM153I7G — 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:
10M08SCM153C8G
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View Datasheet →10M08SAM153I7G
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View Datasheet →10M08SAM153C8G
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View Datasheet →10M04SCM153I7G
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View Datasheet →10M04SCM153C8G
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View Datasheet →10M08SCM153I7G Maximum Ratings & Electrical Characteristics
| Series | MAX 10 |
| Logic Elements | 8,000 |
| User Flash Memory | 387,072 bits (378 Kbit) |
| Embedded SRAM (M9K blocks) | 414 Kbit |
| Maximum User I/Os | 112 |
| Package | 153-ball MBGA |
| Mounting Type | Surface Mount |
| Operating Supply Voltage | 3.0 V to 3.3 V |
| Minimum Operating Temperature | -40 C |
| Maximum Operating Temperature | +100 C |
| Temperature Grade | Industrial (I7) |
| Configuration Memory | Internal non-volatile flash |
| 18x18 Hardware Multipliers | 1 |
| PLLs | 2 |
| RoHS Status | Compliant |
| Lead-Free | Yes |
10M08SCM153I7G 153-ball mbga Pin Configuration Guide
Complete pinout information for 10M08SCM153I7G (153-ball mbga 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 10M08SCM153I7G.
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
10M08SCM153I7G is suitable for 6 applications: Industrial Motor Control, IoT Edge Sensor Aggregation, Factory Automation I/O Expansion, Low-Cost Video Bridging, Consumer Display Bridge, Portable Test and Measurement.
Industrial Motor Control
The 10M08SCM153I7G is well matched to industrial motor control designs where deterministic response and a non-volatile boot are required. With 8,000 logic elements and 112 I/Os, the device can host a soft-core CPU plus PWM generation, encoder decoding (QEP), and field-oriented control state machines on a single chip. The integrated flash enables instant-on startup from power-on, eliminating the multi-second SRAM FPGA configuration delay that would otherwise cause motor coast. The 153-MBGA package keeps the controller footprint compact, while the industrial -40 C to +100 C temperature grade supports cabinet-mounted drives near power stages. Designers can implement 3-phase PWM at 20 kHz with dead-band insertion in pure hardware, leaving the soft CPU free for the higher-level torque loop.
Recommended
IoT Edge Sensor Aggregation
For IoT edge nodes that aggregate multiple sensor buses, the 10M08SCM153I7G offers the right balance of logic density, non-volatile storage, and I/O count. The 112 user I/Os can host several SPI, I2C, and UART sensor interfaces in parallel, while the 387 Kbit user flash can store calibration tables, device identity keys, and remote firmware update staging images. The on-die dual-configuration flash supports secure in-field OTA updates with rollback, a critical feature for unattended edge deployments. The industrial temperature rating allows outdoor enclosure mounting. A typical design uses the FPGA as a sensor hub that buffers and pre-processes data before forwarding to a downstream Cortex-M class MCU or wireless module.
Recommended
Factory Automation I/O Expansion
In factory automation racks, the 10M08SCM153I7G functions as a low-cost I/O expander that bridges a backplane serial link (such as RS-485 Modbus or EtherCAT) to dozens of parallel 24 V digital I/O channels. The 8K logic elements comfortably fit a Modbus slave state machine plus debounce and pulse-stretching logic, while the 112 I/Os cover a full 64-bit digital input bank with room to spare. The non-volatile flash allows the device to boot deterministically within milliseconds, which is essential when the rack controller expects the I/O slice to be ready on power-up. The 153-MBGA package suits compact PCIe-style daughter cards used inside 1U rack-mounted controllers.
Recommended
Low-Cost Video Bridging
The 10M08SCM153I7G is well suited to low-cost video format conversion and bridging tasks such as RGB-to-LVDS, parallel-camera-to-MIPI bridging (via soft serializers), or display timing generation. Its LVDS-capable I/Os can drive 24-bit RGB streams at modest pixel clocks, while the embedded M9K SRAM provides line buffering without external memory. The non-volatile configuration eliminates external boot components, enabling small-form-factor display modules. Designers can implement pixel-clock PLLs and chroma resampling in pure logic, keeping the BOM under five dollars for the FPGA portion. Industrial temperature grade supports in-vehicle and outdoor signage deployments.
Recommended
Consumer Display Bridge
Consumer products such as set-top boxes, HDMI splitters, and digital signage players often need a low-cost glue logic device that can generate custom display timings, de-skew LVDS pairs, and perform simple picture-in-picture composition. The 10M08SCM153I7G's 8,000 logic elements and dual-configuration flash fit this role perfectly: it boots instantly on power-up, supports in-field timing-table updates, and exposes enough LVDS pairs for dual-link DVI outputs. The 153-MBGA package allows the device to fit beneath a small BGA heatsink on a 4-layer consumer mainboard.
Recommended
Portable Test and Measurement
Portable test instruments benefit from the 10M08SCM153I7G's non-volatile boot, industrial temperature grade, and 112 I/Os. The FPGA can act as a flexible front-end for arbitrary waveform generation, mixed-signal data acquisition, and protocol decoding (I2C, SPI, UART, CAN), all in a single chip. The 387 Kbit user flash can store calibration coefficients and personality bitstreams for different test modes, which can be swapped via the dual-configuration feature. The 153-MBGA keeps the front-end PCB compact enough for handheld form factors, while the 3.3 V core voltage allows direct battery regulation without intermediate DC-DC stages.
Recommended
Recommended Products Summary
Engineering reference data for 10M08SCM153I7G — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10M08SCM153C8G | 10M08SAM153I7G | 10M08SAM153C8G | 10M04SCM153I7G | 10M04SCM153C8G |
|---|---|---|---|---|---|---|
| Brand | Intel (Altera) | Intel (Altera) | Intel (Altera) | Intel (Altera) | Intel (Altera) | Intel (Altera) |
| Package | 153-ball MBGA | 153-ball MBGA - same | 153-ball MBGA - same | 153-ball MBGA - same | 153-ball MBGA - same | 153-ball MBGA - 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 | 1,572,864 (4M04 has more flash) | 1,572,864 (4M04 has more flash) |
| Maximum User I/Os | 112 | 112 | 112 | 112 | 112 | 112 |
| Configuration Image | Dual (CFM0/CFM1) | Dual (CFM0/CFM1) | Single (S suffix) | Single (S suffix) | Dual (CFM0/CFM1) | Dual (CFM0/CFM1) |
| Temperature Grade | Industrial -40C to +100C (I7) | Commercial 0C to +85C (C8) | Industrial -40C to +100C (I7) | Commercial 0C to +85C (C8) | Industrial -40C to +100C (I7) | Commercial 0C to +85C (C8) |
| Operating Supply Voltage | 3.0 V to 3.3 V | 3.0 V to 3.3 V | 3.0 V to 3.3 V | 3.0 V to 3.3 V | 3.0 V to 3.3 V | 3.0 V to 3.3 V |
| Approx. Unit Price @ 1 pc (USD, as of 2026-09-05) | 12.50 | 11.20 | 11.50 | 10.30 | 9.10 | 8.20 |
Key Differentiators
- Dual-image configuration flash supports rollback OTA updates (vs 10M08SAM153I7G)
- Industrial temperature grade for harsh environments (vs 10M08SCM153C8G)
- Drops in to 4K LE MAX 10 footprint when logic budget permits (vs 10M04SCM153I7G)
Design Notes
The 153-ball MBGA package uses a 0.5 mm ball pitch. Design rules require NSMD pads with a 0.27 mm solder-mask opening and microvia-in-pad construction if BGA breakout routing uses the top layer only. For four-layer stack-ups, place two dedicated ground planes immediately below the BGA footprint to provide a low-impedance reference for the high-speed LVDS pairs and the DDR3 interface (if used). Without solid ground return paths, simultaneous-switching noise can corrupt configuration reads from the on-die flash.
Estimated: the 10M08SCM153I7G draws approximately 50 mA quiescent at 3.3 V and can spike to 300 mA during configuration flash writes. Use a ferrite bead plus 10 uF bulk decoupling on each VCCIO bank and 100 nF X7R 0402 caps within 2 mm of every supply ball. Power-rail sequencing is not required, but ramp all rails monotonically within 10 ms to avoid an incomplete configuration that bricks the device until the next POR cycle.
Do not confuse the 10M08SCM153I7G (dual-image, industrial) with the 10M08SAM153I7G (single-image, industrial). Both share the same 153-MBGA footprint and 8K logic elements, but the single-image S variant cannot roll back a failed OTA update. Also verify that the Quartus Prime version supports MAX 10: Quartus II 13.0sp1 and earlier do not synthesize this device family, and a Quartus Prime 18.1 or later installation is required.
Estimated: at maximum toggle rate and 85% I/O utilization, the 10M08SCM153I7G dissipates approximately 1.5 W. The 153-MBGA package has a theta-JA of roughly 25 C/W on a 4-layer JEDEC test board, so the junction rises about 38 C above ambient at full load. Industrial enclosures with no airflow require a 1 square-inch copper heatsink pad beneath the BGA exposed die pad (if present on the chosen variant) to keep Tj below 100 C at +85 C ambient.
Compliance Information
RoHS and lead-free per Altera product page. Halogen-free status not explicitly stated in the verified web data and is marked unknown. AEC-Q100 is not applicable as this is an FPGA, not an automotive-grade discrete; the I7 industrial temperature grade is the relevant ruggedization marker.