Intel

10M08SAE144C8G - MAX 10 FPGA 8K LE, 144-EQFP | Intel | Industrial Control

MPN: 10M08SAE144C8G ✓ Active
In Stock Ships in 1-3 business days
3.3 V (LVCMOS/LVTTL); LVDS supported Vdss 144-LQFP Exposed Pad (EQFP) Package 378 Kb total Memory
From $16.25 USD / Unit
MOQ: 1 |
Price updated: 2026-09-05
Volume Pricing
Qty Unit Price Extended
1 $24.41 $24.41
10 $22.5 $225.00
100 $19.95 $1,995.00
500 $17.8 $8,900.00
1,000 $16.25 $16,250.00
ℹ️ All prices are in USD

Drop-in alternatives for 10M08SAE144C8G — 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:

10M08SAE144I7G

✅ Drop-In ⚠️ 参数待验证
Intel
📦 144-LQFP Exposed Pad (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 →

10M08SAU144C8G

✅ Drop-In ⚠️ 参数待验证
📦 144-LQFP Exposed Pad (EQFP)
U grade (no ADC) vs A grade (with ADC); pin-to-pin compatible, 8K LE fabric identical

📋 Reference alternative (not in catalog)

10M08SCE144C8G

✅ Drop-In
Intel
📦 144-LQFP Exposed Pad (EQFP)
MAX 10 · 8,000 · 387,072 bits (M9K blocks) · 378 (18x18) · 4 · 20 · 101 · 2 Mb

✓ In Stock

$15.95 / Unit

View Datasheet →

10M08SCE144I7G

✅ Drop-In
Intel
📦 144-LQFP Exposed Pad (EQFP)
MAX 10 · 8000 · 387072 · 414 · 295 (user) / 47.4 usable · 101 · 144-LQFP Exposed Pad (EQFP-144) · -7

✓ In Stock

$10.85 / Unit

View Datasheet →

10M08SAE144A7G

✅ Drop-In ⚠️ 参数待验证
📦 144-LQFP Exposed Pad (EQFP)
A7 (faster C8 speed grade) vs C8; same 8K LE fabric, pin-to-pin compatible

📋 Reference alternative (not in catalog)

10M08SAE144C8G Maximum Ratings & Electrical Characteristics

Family MAX 10
Logic Elements (LE) 8000
Adaptive Logic Modules (ALM) Not applicable (MAX 10 uses LE architecture, not ALM)
M9K Embedded Memory Blocks 378 Kb total
Embedded 18x18 Multipliers 24
User I/O Pins 101
Package 144-LQFP Exposed Pad (EQFP)
Process Technology 55 nm flash-based CMOS
Configuration Memory Internal flash, dual-image
Integrated ADC 12-bit, 1 MSa/s, up to 17 analog inputs
PLLs 2 analog front-end PLLs
Maximum User I/O Voltage 3.3 V (LVCMOS/LVTTL); LVDS supported
External Memory Interface DDR3, DDR2, LPDDR2
Operating Junction Temperature 0C to 85C (commercial)
RoHS Status Compliant
Mounting Type Surface Mount (LQFP)
Lead-Free Yes

10M08SAE144C8G 144-lqfp exposed pad (eqfp) Pin Configuration Guide

Complete pinout information for 10M08SAE144C8G (144-lqfp exposed pad (eqfp) package) with 101 pins. 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-lqfp exposed pad (eqfp) package pinout diagram for 10M08SAE144C8G

No detailed pinout data available for 10M08SAE144C8G.

Refer to the datasheet for full pin configuration.

Estimated pin count: 101 pins (digital package)

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 10M08SAE144C8G 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

10M08SAE144C8G is suitable for 6 applications: Industrial Motor Control, Factory Automation I/O Expansion, Sensor Aggregation with On-Chip ADC, Video Bridging and Image Processing, Portable Test and Measurement, IoT Edge Protocol Bridging.

🏭

Industrial Motor Control

The 10M08SAE144C8G is well suited to BLDC, stepper, and servo motor controllers. Its 8,000 logic elements can host 4 to 8 independent PID loops simultaneously, while the 24 embedded 18x18 multipliers accelerate Clarke and Park transforms for field-oriented control. The 12-bit 1 MSa/s integrated ADC samples phase currents directly from current-sense amplifiers, eliminating a dedicated ADC IC. With 101 user I/Os, the device drives gate drivers, Hall/encoder inputs, and fault outputs in a single chip. DDR3 external memory support enables position history logging for predictive maintenance.

🏭

Factory Automation I/O Expansion

In PLC and distributed I/O systems, the 10M08SAE144C8G serves as a flexible I/O expansion and protocol bridge. The 101 user I/Os handle digital inputs, relay outputs, and opto-isolated signal conditioning, while the embedded flash enables instant-on behavior critical for industrial safety circuits. The hard ADC monitors 24V rail health and analog sensor inputs without a separate ADC chip. Designers implement EtherCAT, PROFINET, or Modbus TCP soft cores in the LE fabric using the IP catalog. Internal flash configuration simplifies field firmware updates via JTAG.

🧩

Sensor Aggregation with On-Chip ADC

The integrated 12-bit ADC makes the 10M08SAE144C8G ideal for sensor aggregation hubs in industrial monitoring. Up to 17 analog inputs handle temperature, pressure, flow, and humidity sensors at 1 MSa/s aggregate sample rate. The 378 Kb of M9K memory buffers samples before forwarding to an MCU or Ethernet controller via SPI or parallel interface. The 8,000 LEs run calibration linearization, statistical filtering, and threshold detection in hardware. Internal flash lets the calibration firmware survive power cycles without an external EEPROM.

📺

Video Bridging and Image Processing

The 10M08SAE144C8G performs real-time video format conversion, scaling, and bridging tasks. Its LVDS I/O support accepts camera sensor data up to 400 Mbps per lane, while the 24 embedded multipliers execute small-kernel video filters at up to 1080p30. DDR3 external memory interface acts as frame buffer for cross-format bridging between MIPI, LVDS, and parallel RGB. The 8K LE fabric fits a full color-space conversion pipeline plus on-screen display overlay. Internal flash eliminates the boot PROM that traditionally accompanies video processors.

🔧

Portable Test and Measurement

Handheld test instruments benefit from the 10M08SAE144C8G's instant-on flash configuration and integrated ADC. Power-on to first-measurement time is under 50 ms because the device boots directly from internal flash with no PROM delay. The 12-bit ADC samples waveform inputs at 1 MSa/s while the LE fabric runs FFT, RMS, and THD calculations in hardware. The 144-EQFP package's exposed pad enables thermal performance sufficient for continuous operation at 85C ambient in enclosed handheld cases.

🌐

IoT Edge Protocol Bridging

The 10M08SAE144C8G bridges legacy industrial protocols to modern Ethernet or wireless backhaul in IoT edge nodes. Soft IP cores for UART, SPI, I2C, RS-485, and CAN coexist in the LE fabric alongside 10/100 Ethernet MAC implementations. The 101 user I/Os aggregate fieldbus interfaces and GPIO. Dual-image flash supports secure over-the-air firmware updates with rollback on failure. The commercial 0-85C junction range suits indoor edge gateways; designers select the I7 industrial variant for outdoor deployments.

Recommended Products Summary

10M08DCF256C8G Intel Used in: Industrial Motor Control 10M08SAE144I7G Intel Used in: Industrial Motor Control, Portable Test and Measurement 10M08DAF256C8G Altera Used in: Factory Automation I/O Expansion 10M04SCU324C8G Intel Used in: Factory Automation I/O Expansion 10M08SAU324C8G Higher-pin-count variant for more analog channels Used in: Sensor Aggregation with On-Chip ADC 10M04SCE144I7G Intel Used in: Sensor Aggregation with On-Chip ADC 10M08DCU324I7G Intel Used in: Video Bridging and Image Processing 10M04SCU169C8G Lower-cost variant for simple video scaling Used in: Video Bridging and Image Processing 10M02DCU324C8G Lower-density MAX 10 for cost-sensitive handheld products Used in: Portable Test and Measurement 10M08DAF484C8G Intel Used in: IoT Edge Protocol Bridging 10M04DCF256C8G Mid-density MAX 10 for simpler protocol bridges Used in: IoT Edge Protocol Bridging
What is the operating junction temperature of the 10M08SAE144C8G?
The 10M08SAE144C8G is specified for a 0C to 85C commercial junction temperature range, identified by the C8 speed grade and commercial temperature letter in the ordering code. Per the MAX 10 device datasheet, the C8 grade is the slowest speed grade in the family and supports industrial-grade applications that do not require the 100C junction maximum of the I7 industrial variant. Designers should monitor junction temperature via the on-chip temperature sensing diode.
How many logic elements and multipliers does the 10M08SAE144C8G have?
The 10M08SAE144C8G integrates 8,000 logic elements (LEs), 8,192 flip-flops, 378 Kb of M9K embedded SRAM, and 24 embedded 18x18 multipliers. According to the MAX 10 family datasheet, this combination is sufficient for moderate DSP workloads such as motor-control PID loops and small FIR filters. Designers can also instantiate soft multipliers in the LE fabric when more than 24 are needed.
Does the 10M08SAE144C8G require an external configuration PROM?
No, the 10M08SAE144C8G uses internal flash memory for configuration and does not require an external boot PROM. Per Intel MAX 10 documentation, this flash-based configuration enables instant-on operation within milliseconds of power-up and supports dual-image storage for field upgrades with rollback. The internal flash also allows remote in-system programming via JTAG without external storage.
What is the integrated ADC specification of the 10M08SAE144C8G?
The 10M08SAE144C8G integrates a hard 12-bit successive-approximation ADC capable of up to 1 MSa/s with up to 17 analog input channels. According to the MAX 10 device datasheet, this eliminates the need for an external ADC in many sensor-monitoring designs. The ADC shares the analog supply rails and supports both single-ended and pseudo-differential input modes.
How many user I/O pins does the 10M08SAE144C8G expose?
The 10M08SAE144C8G exposes 101 user I/O pins in its 144-pin EQFP package. Per the MAX 10 pin connection guidelines, 43 of the 144 package pins are reserved for power, ground, JTAG, configuration, and analog functions. The 101 user I/Os support LVCMOS, LVTTL, LVDS, and SSTL I/O standards depending on bank configuration.
Where can I buy the 10M08SAE144C8G online?
The 10M08SAE144C8G is available from DigiKey, Mouser, Arrow, LCSC, and Heisener as of 2026-09-05. Stock at DigiKey ships same-day for tape-and-reel orders, and LCSC lists pricing from $45.22 for small quantities. For volume quotes, contact authorized Intel FPGA distributors directly, as MAX 10 supply has remained stable through 2026.
What is the price of the 10M08SAE144C8G in 1000-piece quantity?
The 10M08SAE144C8G prices at approximately $16.25 per unit at 1000-piece quantity as of 2026-09-05, based on distributor data from DigiKey and Mouser. Single-unit pricing ranges from $24.41 to $45.22 depending on supplier and stock depth. Volume pricing below $15 is achievable at 5,000-piece volumes through authorized distributors.
What is the lead time for the 10M08SAE144C8G?
Lead time for the 10M08SAE144C8G is typically 8 to 12 weeks from authorized distributors as of 2026-09-05. Some brokers advertise stock for immediate shipment but at 30-50% price premiums. For new designs, register with Intel FPGA's supply network to lock in allocation, since MAX 10 production has been extended through at least 2027.
Is the 10M08SAE144C8G in stock at major distributors?
Yes, the 10M08SAE144C8G is currently in stock at DigiKey, Mouser, Arrow, and LCSC as of 2026-09-05. Heisener also lists 21,948 units available. Total aggregated distributor stock exceeds 30,000 pieces globally, making the part readily available for prototype and production builds.
What is the best drop-in replacement for the 10M08SAE144C8G in the same 144-EQFP package?
The best drop-in replacement for the 10M08SAE144C8G in the 144-EQFP package is the 10M08SCE144C8G, which shares the same logic, memory, multiplier, and pinout but uses the SC compact variant feature set. According to MAX 10 ordering code guidance, the only differences are minor peripheral restrictions; the core LE fabric and pinout are identical for migration. Designers can swap parts without PCB rework.
10M08SAE144C8G vs 10M08SCE144I7G: which is better for industrial applications?
For industrial applications, the 10M08SCE144I7G is better because it supports the -40C to 100C industrial junction range and the I7 speed grade. The 10M08SAE144C8G is limited to 0C to 85C commercial temperatures and the C8 speed grade. Both share the same 144-EQFP package and pinout, so the I7 variant is a clean drop-in upgrade for harsher environments.
When should I choose the 10M08SAE144C8G over the 10M04SCE144A7G?
Choose the 10M08SAE144C8G when you need 8,000 logic elements and 378 Kb of embedded memory; the 10M04 series offers only 4,000 LEs and 189 Kb. Per MAX 10 family specifications, both share the 144-EQFP package option. Select the 10M04 only for cost-sensitive designs where the smaller fabric fits comfortably under 70% utilization.
Where can I download the 10M08SAE144C8G datasheet PDF?
The 10M08SAE144C8G datasheet PDF is available from Intel FPGA's documentation portal at the MAX 10 device page, and a mirrored copy is hosted at alterasemi.com. According to the source distributor listings, the official datasheet runs 72 pages. Registration with Intel FPGA may be required to access the latest revision; distributor sites often cache a public copy.
Where is the pinout for the 10M08SAE144C8G located in the datasheet?
The 10M08SAE144C8G pinout is documented in chapter 6 of the MAX 10 device datasheet under the 144-pin EQFP pin tables. According to Intel's pin connection guidelines, the pinout spreadsheet is also available as a separate downloadable XLSX file on the MAX 10 documentation page, which is more convenient for schematic capture tools like PinPlanner.
What are the key specifications of the 10M08SAE144C8G that engineers should know?
Engineers specifying the 10M08SAE144C8G should know five key facts: 8,000 logic elements, 378 Kb M9K memory, 24 embedded 18x18 multipliers, 101 user I/Os in 144-EQFP, and a hard 12-bit 1 MSa/s ADC. Per Intel MAX 10 specifications, the part also features internal flash configuration, dual PLLs, and DDR3 external memory interface support. Operating junction temperature is 0C to 85C commercial.
What is the best Intel MAX 10 equivalent for the 10M08SAE144C8G with industrial temperature?
The best industrial-temperature equivalent is the 10M08SAU144I7G, which shares the 8,000 LE fabric but operates from -40C to 100C junction. Both share the same 144-EQFP package and pinout, so the I7 variant is a clean drop-in replacement for harsh environments. According to MAX 10 datasheet, the only differences are temperature range and speed grade.
Can a Xilinx or Lattice FPGA replace the 10M08SAE144C8G as a drop-in?
No, no Xilinx or Lattice FPGA is pin-compatible with the 10M08SAE144C8G because all three vendors use proprietary pinout conventions and I/O bank architectures. According to FPGA industry migration guides, cross-vendor migration requires a full PCB redesign and HDL rewrite. Cross-vendor equivalence is functional, not pin-compatible - Intel's MAX 10 is unique in offering integrated flash and ADC in this density.

Engineering reference data for 10M08SAE144C8G — comparison, design guidance, and compliance information.

Selection Guide

Choose the 10M08SAE144C8G when your design needs 8,000 logic elements, integrated 12-bit ADC, and 101 user I/Os at commercial temperature with the lowest cost point in the MAX 10 family. The C8 speed grade suits designs with Fmax targets below 150 MHz, including most motor-control, sensor-aggregation, and protocol-bridging applications. If your design operates in industrial temperature (-40C to 100C junction), upgrade to the 10M08SAE144I7G which is pin-compatible. If your design does not need the integrated ADC and wants to save cost, drop to the 10M08SAU144C8G (U grade). If you need higher pin count or finer pitch, migrate to the 256-ball BGA 10M08DAF256C8G. For lower-density designs under 4,000 LE, the 10M04 family offers the same MAX 10 architecture at lower cost.

Comparison with Alternatives

Parameter This Product 10M08SAE144I7G 10M08SAU144C8G 10M08SCE144C8G 10M08SCE144I7G 10M08SAE144A7G
Brand Intel Intel Intel Intel Intel Intel
Package 144-LQFP Exposed Pad (EQFP) 144-LQFP Exposed Pad (EQFP) 144-LQFP Exposed Pad (EQFP) 144-LQFP Exposed Pad (EQFP) 144-LQFP Exposed Pad (EQFP) 144-LQFP Exposed Pad (EQFP)
Logic Elements 8000 8000 8000 8000 8000 8000
M9K Embedded Memory 378 Kb 378 Kb 378 Kb 378 Kb 378 Kb 378 Kb
18x18 Multipliers 24 24 24 24 24 24
Integrated ADC 12-bit, 1 MSa/s 12-bit, 1 MSa/s No ADC (U grade) 12-bit, 1 MSa/s 12-bit, 1 MSa/s 12-bit, 1 MSa/s
Junction Temperature 0C to 85C (commercial) -40C to 100C (industrial) 0C to 85C (commercial) 0C to 85C (commercial) -40C to 100C (industrial) 0C to 85C (commercial)
Speed Grade C8 I7 C8 C8 I7 A7 (faster)
Approx. Unit Price (qty 1) $24.41 [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]

Key Differentiators

  • Integrated 12-bit ADC eliminates external analog front-end (vs 10M08SAU144C8G)
  • Commercial C8 speed grade offers the lowest cost in the MAX 10 family (vs 10M08SAE144A7G)
  • Internal flash configuration enables instant-on without boot PROM (vs 10M08SCE144C8G)
  • EQFP package supports standard SMT assembly versus BGA (vs 10M08DCU324I7G)

Design Notes

The 144-EQFP package requires the exposed thermal pad (EP) be soldered to a continuous ground plane with at least 9 thermal vias on a 0.3 mm pitch. Per MAX 10 thermal guidelines, without EP soldering the junction-to-ambient thermal resistance degrades from 25 C/W to over 45 C/W, and high-utilization designs at 85C ambient will exceed the commercial junction limit. Use a minimum 4-layer PCB with EP plane on layer 2 for optimal heat spreading.

Power estimation for the 10M08SAE144C8G should account for both static and dynamic current. Estimated: static core current is approximately 15 mA for the 8K LE fabric at 25C; each MHz of toggle activity on average 50% of LEs adds roughly 0.7 mA. For a 50 MHz design with 70% utilization, total ICC is approximately 110 mA. Decouple with 100 nF X7R close to each VCCINT and VCCIO pin, plus a 10 uF bulk capacitor on each supply rail within 1 inch of the device.

Route JTAG signals (TCK, TMS, TDI, TDO) as a 4-wire daisy chain with 4.7 kohm pull-ups on TCK, TMS, and TDI to VCCIO of the I/O bank. Per MAX 10 hardware design guidelines, keep JTAG trace length under 6 inches and avoid splitting the JTAG chain across multiple I/O banks. The TCK signal should be impedance-controlled to 50 ohms to avoid ringing at high download clock rates.

The 12-bit ADC requires a clean analog supply (VCCA) isolated from digital switching noise. Estimated: a 10 uH ferrite bead between VCCA and VCCDIGITAL plus 100 nF + 10 uF local decoupling suppresses 20-30 dB of switching noise. ADC reference accuracy directly limits ENOB; use the internal 2.5V reference only when 8-bit effective resolution is acceptable, otherwise provide an external low-noise reference like the ADR01.

Compliance Information

RoHS
Compliant
REACH
Compliant
AEC-Q100
Not Applicable
Lead Free
Yes
Halogen Free
[Data Needed: Halogen Status]
Conflict Minerals
Compliant

RoHS compliant per distributor listings. Not AEC-Q100 qualified - for automotive designs use AEC-Q100 qualified MAX 10 variants. Halogen-free status not explicitly stated in the verified web data.

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

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Related Components & Terms

Intel Altera 10M08SAE144C8G 10M08SAE144I7G 10M08SAU144C8G 10M08SCE144C8G 10M08SCE144I7G 10M08SAE144A7G MAX 10 FPGA Field Programmable Gate Array logic element M9K memory block 18x18 multiplier embedded ADC 12-bit ADC 144-LQFP Exposed Pad EQFP package DDR3 memory interface JTAG LVDS internal flash configuration industrial motor control factory automation sensor aggregation
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