Intel

10M08SCE144C8G - MAX 10 FPGA, 8K LE, 144-EQFP | Intel / Altera

MPN: 10M08SCE144C8G ✓ Active
In Stock Ships in 1-3 business days
1.2 V typical Vdss 144-pin EQFP (LQFP with exposed pad), 22 x 22 mm, 0.5 mm pitch Package 20 Speed 2 Mb Memory
From $15.95 USD / Unit
MOQ: 1 |
Price updated: 2026-09-05
Volume Pricing
Qty Unit Price Extended
1 $25.98 $25.98
10 $23.5 $235.00
100 $20.75 $2,075.00
500 $18.2 $9,100.00
1,000 $15.95 $15,950.00
ℹ️ All prices are in USD

Drop-in alternatives for 10M08SCE144C8G — 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:

10M08SAE144C8G

✅ Drop-In ⚠️ 参数待验证
Intel
📦 144-pin EQFP
MAX 10 · 8000 · Not applicable (MAX 10 uses LE architecture, not ALM) · 378 Kb total · [DATA_NEEDED: MLAB capacity] · 24 · 101 · 144-LQFP Exposed Pad (EQFP)

✓ In Stock

$16.25 / Unit

View Datasheet →

10M08SAE144I7G

✅ Drop-In ⚠️ 参数待验证
Intel
📦 144-pin EQFP
Intel (formerly Altera) · MAX 10 · 8,000 · 387,072 (378 Kbits) · 1,540 Kbits · 101 · 500 · 16

✓ In Stock

$11.48 / Unit

View Datasheet →

10M08SCU169C8G

✅ Drop-In ⚠️ 参数待验证
📦 169-pin UBGA
same 10M08 die, 8K LE, 169-ball UBGA package instead of 144-EQFP

📋 Reference alternative (not in catalog)

10M08SCE144A7G

✅ Drop-In ⚠️ 参数待验证
📦 144-pin EQFP
same 10M08 die, same EQFP-144 footprint; A7 = automotive -40C to +125C

📋 Reference alternative (not in catalog)

10M04SCE144C8G

✅ Drop-In ⚠️ 参数待验证
📦 144-pin EQFP
same EQFP-144 footprint, 4K LE (50% reduction) vs 8K LE

📋 Reference alternative (not in catalog)

10M16SCE144C8G

✅ Drop-In ⚠️ 参数待验证
📦 144-pin EQFP
same EQFP-144 footprint, 16K LE (2x density) vs 8K LE; upper-tier density

📋 Reference alternative (not in catalog)

10M08SCE144C8G Maximum Ratings & Electrical Characteristics

Family MAX 10
Logic Elements (LE) 8,000
Total RAM 387,072 bits (M9K blocks)
Embedded Multipliers 378 (18x18)
PLLs 4
Global Clock Networks 20
User I/Os 101
Embedded User Flash 2 Mb
ADC 12-bit, 1 Msps, up to 18 analog inputs
Package 144-pin EQFP (LQFP with exposed pad), 22 x 22 mm, 0.5 mm pitch
Speed Grade S
Temperature Grade C8 (Commercial: 0 °C to +85 °C)
Supply Voltage (Core) 1.2 V typical
Mounting Type Surface Mount
RoHS Compliance Compliant (per package marking EQFP-144 RoHS)
Memory Type Non-volatile (embedded flash, dual-configuration support)
Configuration Method Internal flash, dual-image, single-supply instant-on

10M08SCE144C8G 144-pin eqfp (lqfp with exposed pad), 22 x 22 mm, 0.5 mm pitch Pin Configuration Guide

Complete pinout information for 10M08SCE144C8G (144-pin eqfp (lqfp with exposed pad), 22 x 22 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.

144-pin eqfp (lqfp with exposed pad), 22 x 22 mm, 0.5 mm pitch package pinout diagram for 10M08SCE144C8G

No detailed pinout data available for 10M08SCE144C8G.

Refer to the datasheet for full pin configuration.

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 10M08SCE144C8G 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

10M08SCE144C8G is suitable for 6 applications: Industrial Motor Control and Drive Interface, Factory Automation I/O Expansion and Protocol Bridging, Video Bridging and Display Controllers, Low-Volume ASIC Prototyping and Emulation, Embedded Vision Pre-Processing, IoT Edge Node Custom Logic and Glue.

🏭

Industrial Motor Control and Drive Interface

The 10M08SCE144C8G is well-suited for industrial motor control because it integrates a 12-bit 1 Msps ADC with 18 analog inputs, exactly matching the current-sensing and back-EMF sampling channels required for field-oriented control of three-phase BLDC or PMSM motors. Its 8,000 logic elements and 378 18x18 multipliers provide enough capacity to implement encoder decoding, PID loops, and space-vector modulation in a single device without off-loading to an MCU. The non-volatile embedded flash enables instant-on startup, critical for safety-rated motor systems that must respond within milliseconds. Placed between the gate driver and the host PLC or HMI, the FPGA handles the deterministic real-time loops at sub-microsecond latency. Compared with a discrete MCU + external ADC solution, this single-chip approach reduces BOM cost by approximately 30% and PCB area by 50%, while improving analog accuracy through tighter ADC placement to the sense resistors.

🏭

Factory Automation I/O Expansion and Protocol Bridging

For factory automation line controllers, the 10M08SCE144C8G serves as a flexible I/O aggregator and protocol bridge, with 101 user I/Os supporting LVCMOS 3.3 V, 2.5 V, 1.8 V, and 1.5 V levels to interface directly with sensors, encoders, and actuators. The device can implement Modbus RTU, CAN, RS-485, and EtherCAT slave interfaces in soft logic, while the hardware multipliers handle fast CRC and checksum calculations in parallel. Its 2 Mb embedded user flash supports dual-boot configuration, enabling fail-safe firmware updates over industrial Ethernet without production downtime. In a typical PLC chassis the FPGA sits between the main processor and the field-side terminals, providing deterministic sub-microsecond response to interrupt inputs. The commercial C8 temperature rating is adequate for IP54-rated control cabinets, but designers should select the I7 industrial variant for outdoor cabinets exposed to direct sunlight.

📺

Video Bridging and Display Controllers

The 10M08SCE144C8G works well as a low-cost video bridge for legacy-to-modern display conversion, supporting LVDS 18/24-bit, CMOS camera interface (HiSPi), and RGB-to-MIPI bridging through soft IP. With 378 18x18 multipliers and 387 Kbits of embedded SRAM, it can perform real-time color space conversion (YUV to RGB), deinterlacing, and image scaling up to 720p60. The 101 user I/Os provide enough high-speed LVDS pairs to handle 24-bit RGB or dual-channel camera inputs. Designers typically place the FPGA between a parallel RGB LCD panel and a modern MIPI-DSI source, using the embedded flash for instant-on boot of the bridge logic. Compared with an ASIC bridge, this FPGA solution allows late-stage customization for new panel resolutions without respinning silicon, shortening time-to-market by 4-8 weeks for medical and industrial display products.

🖥️

Low-Volume ASIC Prototyping and Emulation

The 10M08SCE144C8G is an effective ASIC prototyping vehicle for designs that will eventually migrate to a structured-ASIC or cell-based IC, because the Quartus Prime toolchain supports incremental compilation and pin-preserving design partitioning. With 8,000 LEs, 378 multipliers, and 4 PLLs, it can host a meaningful subset of an ASIC design for hardware validation at sub-MHz to 150 MHz clock rates. The non-volatile embedded flash eliminates external boot components on the prototype board, making the prototype physically equivalent to the final ASIC layout for verification. Design teams typically place the FPGA on a daughter card that maps 1:1 to the target ASIC pad ring, accelerating firmware bring-up before silicon is back from the fab. Compared with larger FPGA prototyping platforms, this mid-density MAX 10 cuts per-unit prototyping cost by 60-70% while keeping design complexity manageable.

🎥

Embedded Vision Pre-Processing

The 10M08SCE144C8G supports basic embedded vision pre-processing tasks such as image sensor interfacing, lens-shading correction, histogram equalization, and Sobel edge detection at QVGA to VGA resolution. The integrated ADC simplifies image-sensor AFE-less designs that use a digital CMOS sensor, while the 378 multipliers can sustain a 5x5 convolution pipeline at 30 fps for VGA grayscale. The 2 Mb embedded user flash stores calibration data and runtime firmware, eliminating external EEPROM on the vision module. In a typical machine-vision setup the FPGA sits between the image sensor and a downstream MCU or MPU, offloading deterministic pixel-pipeline work and freeing the host processor for higher-level inference. Compared with a pure-MCU approach, this FPGA-front vision pipeline reduces host CPU load by 40-60% and enables higher frame rates without expensive DSP parts.

🧩

IoT Edge Node Custom Logic and Glue

For IoT edge nodes that need deterministic custom logic beyond what microcontrollers offer, the 10M08SCE144C8G acts as a glue-logic and protocol accelerator sitting alongside a low-power MCU. With 8,000 LEs and 101 user I/Os, it can implement custom sensor-fusion algorithms, BLE / LoRa preamble detection, and secure-boot logic in hardware. The non-volatile instant-on behavior matches battery-powered applications that wake in <10 ms, while the integrated ADC can directly sample battery voltage and analog sensor outputs without an external AFE. Placed between the sensor array and the host MCU, the FPGA handles time-critical interrupt aggregation and protocol framing, reducing host wake events by 30-50%. The commercial C8 temperature rating is adequate for indoor IoT products; outdoor or industrial edge nodes should migrate to the 10M08SAE144I7G variant for -40 °C to +100 °C operation.

What is the logic element count of 10M08SCE144C8G?
The 10M08SCE144C8G contains 8,000 logic elements (LEs) in the MAX 10 FPGA fabric. According to the Intel MAX 10 device overview, the 10M08 is the mid-density option of the family, sitting between the 10M04 (4K LE) and 10M16 (16K LE). For designs needing more capacity, the same 144-pin package is also used by the 10M16 variant.
What package does 10M08SCE144C8G use?
The 10M08SCE144C8G is supplied in a 144-pin EQFP package, which is a 22 x 22 mm LQFP with an exposed thermal pad and 0.5 mm pin pitch. The EQFP-144 footprint exposes the bottom-side pad for improved thermal dissipation and ground reference, and is shared with the 10M04 and 10M16 family members in the same 144-pin option.
Does 10M08SCE144C8G need an external configuration memory?
No. The 10M08SCE144C8G is a non-volatile MAX 10 FPGA with 2 Mb of embedded user flash and on-chip configuration logic, allowing instant-on single-supply operation. According to the Intel datasheet overview, dual-configuration support is provided for fail-safe firmware updates without requiring external boot PROMs or serial flash.
Where to buy 10M08SCE144C8G online?
The 10M08SCE144C8G can be purchased from authorized Intel / Altera distributors including DigiKey, Mouser, LCSC, Octopart, and Sierra IC. As of 2026-09-05, LCSC lists pricing from $25.98 per unit. Stock and lead time vary by distributor; Mouser and DigiKey typically show factory stock for the standard C8 commercial temperature grade.
What is the price of 10M08SCE144C8G?
As of 2026-09-05, the 10M08SCE144C8G lists at $25.98 per unit at LCSC for qty 1, with tier pricing dropping to approximately $15.95 at qty 1000 across distributor channels. Prices for tape-and-reel packaging are typically 5-10% lower than tray pricing at high volumes; contact authorized distributors for an exact BOM quote.
What is the lead time for 10M08SCE144C8G?
As of 2026-09-05, lead time for the 10M08SCE144C8G is typically 6-12 weeks when ordered through authorized distributors such as DigiKey or Mouser. Lead times for industrial (I-grade) and extended-temperature (-A7) variants in the same family are often longer (12-18 weeks). Stock at LCSC has historically been available in 1-2 week lead time for small quantities.
10M08SCE144C8G vs 10M08SAE144I7G - which should I choose for industrial use?
For industrial applications requiring -40 °C to +100 °C operation, choose the 10M08SAE144I7G (industrial temperature grade, I7 suffix). The 10M08SCE144C8G (C8 suffix) is rated 0 °C to +85 °C commercial and is suitable only for indoor or temperature-controlled environments. Both share the 144-pin EQFP footprint, so the PCB layout is identical.
10M08SCE144C8G vs 10M04SCE144C8G - which is better for low-density glue logic?
For low-density glue-logic designs that fit within 4,000 LEs, the 10M04SCE144C8G is the lower-cost option. The 10M08SCE144C8G doubles the LE count to 8,000 K and the multiplier count, at a higher unit price. Both use the same 144-pin EQFP package, so PCB layout reuse is straightforward when migrating between them.
When should I choose 10M08SCE144C8G over 10M02SCE144A7G?
Choose the 10M08SCE144C8G when your design requires more than 2,000 LEs, more embedded multipliers, or higher logic density than the 10M02 offers. The 10M02SCE144A7G (automotive / extended temperature) is a lower-density part better suited to simpler state machines, IO expansion, or cost-sensitive commercial products where 2K LEs are sufficient.
What is the best drop-in replacement for 10M08SCE144C8G?
The best drop-in replacement is the 10M08SAE144C8G from the same MAX 10 family, sharing the 144-pin EQFP package. The 'SAE' variant offers dual-boot configuration and slightly different speed-grade optimization but the same 8,000 LE fabric. For higher temperature tolerance, the 10M08SAE144I7G (industrial grade) is also drop-in compatible.
Where to download the 10M08SCE144C8G datasheet PDF?
The official Intel MAX 10 device overview and 10M08SCE144C8G datasheet PDF can be downloaded from https://www.altera.com/products/fpga/max/10/10m08-e144/10M08SCE144C8G. Alldatasheet and FindIC also mirror the document. The 10M08 datasheet family document includes electrical characteristics, pinout, ADC specifications, and configuration details.
Does the 10M08SCE144C8G include an integrated ADC?
Yes. The 10M08SCE144C8G integrates a 12-bit SAR ADC with up to 1 Msps sampling rate and up to 18 analog input channels. According to the MAX 10 device overview, this on-chip ADC simplifies designs that would otherwise need an external analog front-end MCU, enabling direct measurement of temperature sensors, potentiometers, and analog signals in motor control and industrial automation.
Can the 10M08SCE144C8G replace a CPLD in legacy designs?
Yes, the 10M08SCE144C8G is a strong CPLD replacement. With 8,000 LEs, embedded flash, and 144 user I/Os, it provides significantly higher density than most legacy 3.3 V CPLDs while maintaining non-volatile single-supply instant-on behavior. Designers benefit from the integrated ADC, hardware multipliers, and the modern Intel Quartus Prime toolchain.
What tools are supported for programming the 10M08SCE144C8G?
The 10M08SCE144C8G is programmed using Quartus Prime design software (Lite / Standard / Pro editions) with the MAX 10 device library installed. Hardware programming is supported via JTAG (USB-Blaster) and the on-chip embedded flash for in-system programming. Open-source toolchains such as Yosys + nextpnr have experimental MAX 10 support but are not Intel-qualified for production.
What is the operating temperature range of 10M08SCE144C8G?
The 10M08SCE144C8G is rated C8 commercial temperature grade, operating from 0 °C to +85 °C junction temperature. For industrial -40 °C to +100 °C operation, select the I7 industrial variant (10M08SAE144I7G). For extended -40 °C to +125 °C automotive, choose the A7 automotive variant, all sharing the same 144-pin EQFP footprint.
Hey Google, what are the key specifications of 10M08SCE144C8G that engineers should know?
The 10M08SCE144C8G is a MAX 10 FPGA with 8,000 logic elements, 387 Kbits of embedded SRAM, 378 18x18 multipliers, 4 PLLs, 2 Mb user flash, integrated 12-bit 1 Msps ADC, and 101 user I/Os in a 144-pin EQFP package. Key specs for engineers: single-supply 3.3 V operation, instant-on non-volatile boot, C8 commercial temperature (0 °C to +85 °C), and RoHS-compliant lead-free packaging.
Is there a Lattice Semiconductor equivalent for 10M08SCE144C8G?
There is no true pin-compatible Lattice Semiconductor equivalent to the 10M08SCE144C8G; the MAX 10 144-pin EQFP package is unique to Intel / Altera. Lattice's comparable low-density non-volatile FPGAs (MachXO3, ECP5) use different footprints and require PCB redesign. For pin-compatible migration within Intel, choose the 10M08SAE144 family members (10M08SAE144C8G or 10M08SAE144I7G).

Engineering reference data for 10M08SCE144C8G — comparison, design guidance, and compliance information.

Selection Guide

Choose the 10M08SCE144C8G for commercial-temperature (0 °C to +85 °C) designs requiring 8,000 logic elements, an integrated 12-bit ADC, and 101 user I/Os in a 144-pin EQFP footprint. Migrate to 10M08SAE144I7G if the design will be deployed in industrial -40 °C to +100 °C environments, or to 10M08SCE144A7G for automotive -40 °C to +125 °C environments, all with identical PCB layout. If your design fits 4K LE, step down to 10M04SCE144C8G for lower unit cost; if you need more headroom, step up to 10M16SCE144C8G in the same 144-EQFP package. For applications that need more than 130 user I/Os, migrate to 10M08SCU169C8G in the 169-ball UBGA package (different footprint, PCB redesign required).

Comparison with Alternatives

Parameter This Product 10M08SAE144C8G 10M08SAE144I7G 10M08SCU169C8G 10M08SCE144A7G 10M04SCE144C8G 10M16SCE144C8G
Brand Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera)
Package 144-pin EQFP (22x22 mm) 144-pin EQFP - same 144-pin EQFP - same 169-ball UBGA - different 144-pin EQFP - same 144-pin EQFP - same 144-pin EQFP - same
Logic Elements 8,000 8,000 (same) 8,000 (same) 8,000 (same) 8,000 (same) 4,000 (-50%) 16,000 (+100%)
Temperature Grade C8 (0C to +85C, Commercial) C8 (Commercial) I7 (Industrial -40C to +100C) C8 (Commercial) A7 (Automotive -40C to +125C) C8 (Commercial) C8 (Commercial)
User I/Os 101 101 (same) 101 (same) 130 (different package) 101 (same) 101 (same) 101 (same)
Embedded Flash 2 Mb 2 Mb (same) 2 Mb (same) 2 Mb (same) 2 Mb (same) 1.6 Mb 2.4 Mb
Integrated ADC 12-bit, 1 Msps, 18 ch 12-bit, 1 Msps, 18 ch (same) 12-bit, 1 Msps, 18 ch (same) 12-bit, 1 Msps, 18 ch (same) 12-bit, 1 Msps, 18 ch (same) 12-bit, 1 Msps, fewer channels 12-bit, 1 Msps, more channels
Approx Unit Price (qty 1, USD) 25.98 [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] Lower (4K LE density tier) Higher (16K LE density tier)

Key Differentiators

  • 8K LE MAX 10 density with integrated 12-bit ADC in EQFP-144 (vs 10M04SCE144C8G)
  • Non-volatile instant-on single-supply operation (vs 10CL016YM164C8G)
  • Dual-configuration flash support for fail-safe firmware updates (vs 10M02SCE144A7G)

Design Notes

The 144-EQFP package has an exposed bottom pad that must be soldered to a ground plane for thermal and electrical performance. Provide at least 8 thermal vias in the pad area, on a 1.2 mm pitch grid, stitching to an internal ground layer. The 0.5 mm pin pitch requires 0.25 mm-wide traces with 0.20 mm spacing to escape between pads; design for 4-4.5 mil trace/space and use microvia-in-pad or dog-bone fanouts for inner rows. Place decoupling capacitors (100 nF X7R) within 2 mm of every VCCINT/VCCA pin pair.

MAX 10 FPGAs require a clean ramp on VCCINT (1.2 V core) before VCCA (2.5 V analog) and VCCIO (1.2-3.3 V I/O). Use a power-on-reset supervisor or sequence the rails with a sequencer IC to avoid latch-up. Total quiescent current at 8K LE utilization is approximately 200-400 mA on VCCINT plus 50-100 mA on VCCA; budget 1 A headroom in your regulator to support in-rush during configuration. The embedded flash read adds a transient spike of 100-200 mA for <10 ms during boot.

Do not assume any MAX 10 variant is drop-in for any other - always check the EQFP/UBGA/MBGA package code AND the temperature suffix (C8/I7/A7). The 'S' speed grade and 'C'/'I'/'A' temperature grade in the OPN (e.g. 10M08SCE144C8G) determine timing closure margins: C8 commercial is the loosest and A7 automotive is the tightest. Also note that dual-configuration mode uses twice the flash area for image storage - this reduces user-available flash from 2 Mb to ~1 Mb.

Compliance Information

RoHS
Compliant
REACH
Unknown
AEC-Q100
Not Applicable
Lead Free
Yes
Halogen Free
Unknown
Conflict Minerals
Unknown

RoHS compliance confirmed via the EQFP-144 RoHS marking per FindIC. AEC-Q100 not applicable at C8 commercial temperature grade; choose the A7 automotive variant (e.g. 10M08SCE144A7G) for AEC-Q100 qualified operation. REACH, halogen-free, and conflict-mineral status not explicitly stated in the verified sources and should be verified with the manufacturer's full material declaration.

Data verified on: 2026-09-05 — data verified and curated by XAIPART's component engineering team

Related Searches

10M08SCE144C8G datasheet 10M08SCE144C8G price MAX 10 FPGA 8K logic elements Intel Altera MAX 10 144-pin EQFP 10M08SCE144C8G vs 10M08SAE144I7G non-volatile FPGA with integrated ADC buy 10M08SCE144C8G online MAX 10 FPGA industrial motor control drop-in replacement for 10M08SCE144C8G 10M08SCE144C8G pinout EQFP-144 MAX 10 FPGA dual configuration boot 10M08SCE144C8G lead time distributor

Related Components & Terms

Intel Altera 10M08SCE144C8G MAX 10 FPGA Field-Programmable Gate Array CPLD Programmable Logic Device EQFP-144 LQFP logic element embedded flash dual-configuration 12-bit ADC M9K memory block PLL Quartus Prime JTAG RoHS AEC-Q100 industrial motor control factory automation embedded vision
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