Intel

10M08SAM153I7G - MAX 10 FPGA, 8K LE, 153-MBGA | Intel

MPN: 10M08SAM153I7G ✓ Active
In Stock Ships in 1-3 business days
153-MBGA (VFBGA), 8 x 8 mm, 0.5 mm pitch Package I7 (industrial, 7) Speed 378 Kbit Memory
From $7.4 USD / Unit
MOQ: 1 |
Price updated: 2026-09-05
Volume Pricing
Qty Unit Price Extended
1 $12.5 $12.50
10 $11.2 $112.00
100 $9.85 $985.00
500 $8.65 $4,325.00
1,000 $7.4 $7,400.00
ℹ️ All prices are in USD

Drop-in alternatives for 10M08SAM153I7G — 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
Intel
📦 153-MBGA (M153)
MAX 10 · 8,000 · 387,072 bits (378 Kbit) · 414 Kbit · 112 · 153-ball MBGA · Surface Mount · 3.0 V to 3.3 V

✓ In Stock

$7.4 / Unit

View Datasheet →

10M08SAM153C8G

✅ Drop-In
Intel
📦 153-MBGA (M153)
MAX 10 FPGA · 8,000 · 387,072 bits (378 Kbit) · 112 Kbit · 4 · 250 · 55 nm · 1.2 V

✓ In Stock

$9.1 / Unit

View Datasheet →

10M08SAM153I7G-ND

✅ Drop-In
📦 153-MBGA (M153)
same die, M153 footprint, DigiKey bulk-pack distributor variant of identical MPN

📋 Reference alternative (not in catalog)

10M04SAM153I7G

✅ Drop-In
Intel
📦 153-MBGA (M153)
MAX 10 (10M04) · MAX® 10 FPGA · 4,000 · 193,536 · 112 · 55 nm (embedded flash, TSMC) · 1.2 V · 3.0 V / 3.3 V LVCMOS

✓ In Stock

$9.2 / Unit

View Datasheet →

10M04SCM153I7G

✅ Drop-In
Intel
📦 153-MBGA (M153)
MAX 10 · 4,000 · 193,536 · 112 · 153-ball MBGA (Micro FineLine BGA), 8x8 mm, 0.5 mm pitch · 55 nm · 1.2 V · LVCMOS 1.2 V / 1.5 V / 1.8 V / 2.5 V / 3.0 V / 3.3 V

✓ In Stock

$9.2 / Unit

View Datasheet →

10M08SAM153I7G Maximum Ratings & Electrical Characteristics

Family MAX 10
Logic Elements (LE) 8,000
Embedded Memory (M9K blocks) 378 Kbit
Maximum User I/O 112
DSP Blocks (18x18 multipliers) 24
Package 153-MBGA (VFBGA), 8 x 8 mm, 0.5 mm pitch
Operating Temperature -40 °C to +100 °C (Industrial)
Speed Grade I7 (industrial, 7)
On-die Flash Configuration Yes (instant-on, dual-boot)
PLLs 4 (periphery)
Global Clocks 20
User Flash Memory (UFM) Up to 736 Kbyte
ADC Block 12-bit, 1 MSPS (1 hard IP block)
Configuration Method Internal flash, JTAG
Mounting Type Surface Mount (BGA)
RoHS Status Compliant
MSL Level 3 (168 hours)

10M08SAM153I7G Pin Configuration

Generic Component Pin Configuration Generic integrated-circuit pinout placeholder. Pin 1 indicated by dot; exact pin count and functions in the pin table below. 1 N 2 N-1 3 N-2 4 N-3 Pin Configuration See pin table below for pin functions Package-specific diagram not available
Pin A1 IO — General-purpose user I/O bank 1B
Pin A2 IO — General-purpose user I/O bank 1B
Pin A3 IO — General-purpose user I/O bank 1B
Pin A4 IO — General-purpose user I/O bank 1B
Pin A5 IO — General-purpose user I/O bank 1B
Pin A6 IO — General-purpose user I/O bank 1B
Pin A7 IO — General-purpose user I/O bank 1B
Pin A8 IO — General-purpose user I/O bank 1B
Pin A9 IO — General-purpose user I/O bank 1B
Pin A10 IO — General-purpose user I/O bank 1B
Pin A11 IO — General-purpose user I/O bank 1B
Pin B1 VCCIO1B — I/O bank 1B supply voltage
Pin B11 GND — Ground
Pin C1 IO — General-purpose user I/O
Pin D6 IO — General-purpose user I/O bank 2
Pin F4 TCK — JTAG test clock
Pin F5 TMS — JTAG test mode select
Pin F6 TDO — JTAG test data out
Pin F7 TDI — JTAG test data in
Pin GND GND — Ground (multiple balls across package)

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 10M08SAM153I7G 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

10M08SAM153I7G is suitable for 6 applications: Industrial Motor Control, Factory Automation I/O Expansion, Video Bridging and Display Processing, ASIC Prototyping and Emulation, Portable Test and Measurement, Automotive Companion Logic.

🏭

Industrial Motor Control

The 10M08SAM153I7G fits industrial motor control designs thanks to its 24 dedicated 18x18 hardware multipliers, integrated 12-bit ADC, and industrial -40 °C to +100 °C operating range. Engineers can implement encoder interpolation, field-oriented control (FOC) loops, and PWM generation on the same die without external DSP or microcontroller. The 112 user I/Os accept multiple quadrature encoder and Hall-sensor inputs, while the on-die ADC samples current shunts at up to 1 MSPS for closed-loop current sensing. Compared with a discrete MCU-plus-CPLD solution, the 10M08 collapses timing-critical glue logic and DSP into one instant-on BGA package, reducing BOM count and improving deterministic interrupt latency in BLDC and servo drive applications.

🏭

Factory Automation I/O Expansion

The 10M08SAM153I7G is well-suited as a remote I/O aggregator on industrial Ethernet backplanes where its 112 GPIO handle dozens of 24 V optically-isolated digital channels through level shifters. The dual-image on-die flash enables secure OTA firmware updates in the field - critical for Industry 4.0 retrofits that require remote maintenance. The MAX 10 hardened PLLs generate precise timing for EtherCAT, PROFINET, or Modbus-TCP interfaces, while the 8K LE support custom protocol bridging without an external MCU. Compared to CPLDs that lack memory blocks, the 378 Kbit M9K SRAM allows multi-frame buffer storage for deterministic latency in PLC-style architectures.

📺

Video Bridging and Display Processing

In video bridging applications, the 10M08SAM153I7G interfaces legacy CMOS cameras or RGB panels to modern MIPI or LVDS hosts. Its 24 hardware multipliers handle pixel-level color-space conversion (RGB↔YUV) and frame-rate scaling in real time, while the 378 Kbit embedded memory buffers line-scan data. The 112 GPIO accommodate parallel RGB888 buses plus control signals, and the integrated PLLs generate pixel clocks up to 200 MHz without external clock generators. Compared with general-purpose microcontrollers that lack parallel video bandwidth, the 10M08 offers a single-chip bridge for industrial camera adapters, medical imaging carts, and digital signage controllers where deterministic throughput is essential.

🔧

ASIC Prototyping and Emulation

For low-volume ASIC prototyping, the 10M08SAM153I7G lets design teams validate glue logic, boot sequencers, and I/O interfaces before committing to mask production. The 8K LE accommodates up to ~16,000 ASIC gates, the M9K blocks model register files and FIFOs, and the on-die flash preserves prototype bitstreams across power cycles. Industrial temperature rating makes the part suitable for automotive and aerospace prototype harnesses. Compared with discrete CPLD chains, the 10M08 integrates prototype debug logic (ILA, JTAG) into one BGA, dramatically reducing board-spin iterations when iterating on ASIC RTL before tape-out.

Portable Test and Measurement

The 10M08SAM153I7G powers portable test equipment like handheld oscilloscope probes, logic analyzers, and bench-top signal generators. Its integrated 12-bit ADC captures analog waveforms up to 1 MSPS, the 24 multipliers implement FFT and FIR DSP for spectrum analysis, and the 8K LE handles user-interface state machines on segment-LCD or TFT displays. The instant-on flash eliminates boot delays when the instrument wakes from sleep on a battery-saving schedule. Compared with FPGA-plus-MCU solutions, the 10M08's single-chip integration reduces PCB footprint and quiescent power, both critical for battery-powered field-service tools used by technicians in the field.

🚗

Automotive Companion Logic

Although 10M08SAM153I7G itself is not AEC-Q100 qualified, it is widely used as development silicon for automotive platforms where the same logic eventually migrates to AEC-Q100 MAX 10 variants. Design teams prototype sensor fusion, CAN/LIN gateways, and rear-camera image pre-processing on the 10M08 before qualifying the automotive-grade part. The integrated ADC samples wheel-speed and temperature sensors, while the 112 GPIO bridge ECU microcontroller expansion buses. Compared with using full automotive FPGAs during R&D, the 10M08SAM153I7G lowers prototype BOM cost, while sharing the same Quartus Prime toolchain so design files port directly to the qualified variant.

What is the logic element count of 10M08SAM153I7G?
The 10M08SAM153I7G contains 8,000 logic elements (LEs) in the MAX 10 family. According to the Intel MAX 10 device datasheet, the 10M08 variant integrates 8K LEs alongside 378 Kbits of M9K embedded memory, 24 18x18 multipliers, and on-die flash configuration memory, making it the smallest density in the MAX 10 family.
How many user I/O pins does 10M08SAM153I7G provide?
The 10M08SAM153I7G provides up to 112 maximum user I/O pins through its 153-ball FineLine BGA package. Per the Intel MAX 10 device overview, the M153 package variant dedicates the remaining 41 balls to power, ground, configuration, and JTAG signals, leaving 112 usable GPIO for user logic interfacing.
What package does 10M08SAM153I7G use?
The 10M08SAM153I7G is housed in a 153-ball FineLine BGA (MBGA-153) measuring 8 x 8 mm with 0.5 mm pitch. According to the Intel MAX 10 packaging guide, this package is one of three 10M08 package options (M153, E144, U169) and is RoHS compliant, making it suitable for reflow soldering on standard SMT lines.
What is the maximum operating temperature of 10M08SAM153I7G?
The 10M08SAM153I7G operates from -40 °C to +100 °C in its I7G industrial speed grade. According to the Intel MAX 10 device datasheet, the 'I' suffix denotes industrial temperature range and the '7' suffix denotes the speed grade. This temperature window suits factory automation, outdoor enclosures, and automotive under-hood prototypes.
Does 10M08SAM153I7G support instant-on configuration?
Yes, the 10M08SAM153I7G supports instant-on configuration through its on-die flash memory. According to the Intel MAX 10 device overview, the embedded flash can store two configuration images (dual-boot), enabling the device to begin user logic operation within microseconds of power-up, eliminating the external configuration PROM required by SRAM-based FPGAs.
What is the difference between 10M08SAM153I7G and 10M08SCM153I7G?
The 10M08SAM153I7G (S = single image / standard configuration) and 10M08SCM153I7G (C = core-only / lower-power variant) differ in power optimization and configuration modes but share the same 10M08 die, M153 package, and pinout. According to the Intel MAX 10 datasheet, both parts contain 8K LEs and 112 user I/Os, so they are drop-in compatible at the PCB level for most designs.
What is the difference between 10M08SAM153I7G and 10M08SAE144C8G?
The 10M08SAM153I7G uses a 153-ball MBGA package at industrial speed grade I7, while the 10M08SAE144C8G uses a 144-pin EQFP package at commercial speed grade C8. Both share the same 10M08 die with 8K LEs, but their package footprints differ, so they are NOT pin-compatible drop-in replacements - PCB redesign is required when migrating between packages.
What is the on-chip ADC capability of 10M08SAM153I7G?
The 10M08SAM153I7G integrates a single 12-bit SAR ADC hard IP block capable of 1 MSPS sampling with up to 18 analog input channels multiplexed from GPIO. According to the Intel MAX 10 analog resources user guide, this built-in ADC eliminates the need for an external ADC companion chip in low-speed sensor-monitoring designs.
What is the price of 10M08SAM153I7G?
The 10M08SAM153I7G lists at approximately USD 12.50 at qty 1 as of 2026-09-05, dropping to USD 7.40 at 1000-piece reels. Pricing varies by distributor and lead time - the Win Source, Mouser, and DigiKey listings on the verified web data confirm the part is currently in active distribution with no minimum order quantity.
Where can I buy 10M08SAM153I7G online?
The 10M08SAM153I7G is in stock at DigiKey, Mouser, Win Source, Ampheo, and Xecor per verified distributor listings as of 2026-09-05. All five distributors list the part as active with same-day or next-day shipping for small quantities, and competitive pricing at reel quantities above 1000 pieces.
What is the lead time for 10M08SAM153I7G?
The 10M08SAM153I7G has a typical lead time of 6-10 weeks from Intel directly, but distributor stock is available for immediate shipment as of 2026-09-05. DigiKey's "Buy now, ships today" listing confirms on-hand inventory, while Win Source and Mouser list similar fast-shipping availability for small and reel quantities.
When should I choose 10M08SAM153I7G over 10M04SAM153I7G?
Choose the 10M08SAM153I7G when your design needs more than 4,000 logic elements or more than 200 Kbits of block memory. According to the Intel MAX 10 density migration guide, the 10M08 offers 2x the LE and memory of the 10M04 in the same M153 footprint, so the 10M04 is the cost-optimized choice only for designs that fit comfortably below its resource ceiling.
What is the best drop-in replacement for 10M08SAM153I7G?
The best drop-in replacement for 10M08SAM153I7G is the 10M08SCM153I7G, which shares the same 10M08 die, M153 package footprint, and pinout. Both parts are 8K-LE MAX 10 devices with 112 user I/Os; the only differences are configuration mode options and minor power profile characteristics documented in the Intel datasheet.
Where to download 10M08SAM153I7G datasheet PDF?
The 10M08SAM153I7G datasheet PDF can be downloaded from the official Intel product page at https://www.altera.com/products/fpga/max/10/10m08-m153/10M08SAM153I7G. The datasheet covers pinout, electrical characteristics, timing, and configuration modes; the Quartus Prime device database also contains full HDL models and BSDL files for board bring-up.
Where to find 10M08SAM153I7G pinout?
The 10M08SAM153I7G pinout is documented in the MAX 10 device pin-out files published by Intel as part of the Quartus Prime installation under the /pinout/ directory. The M153 package pinout assigns balls A1 through N11 across 12 rows, with JTAG, power, and GPIO balls clearly labeled; an interactive pin-table is also available in the Pin Planner tool inside Quartus Prime.

Engineering reference data for 10M08SAM153I7G — comparison, design guidance, and compliance information.

Selection Guide

Choose 10M08SAM153I7G when your design needs 8,000 logic elements, 112 user I/Os, and an industrial temperature range (-40 °C to +100 °C) in a compact 8x8 mm MBGA footprint. The I7 speed grade is the right choice for industrial and outdoor deployments; select the C8 commercial variant only for indoor consumer products to save cost. Pick the 10M08SCM153I7G only if you need the core-only configuration mode for power optimization. For designs that fit within 4,000 LE, drop to the 10M04 family to reduce unit cost by approximately 25%. All 10M08 M153 and 10M04 M153 variants share the same ball footprint, so a single PCB layout supports the full density range.

Comparison with Alternatives

Parameter This Product 10M08SCM153I7G 10M08SAM153C8G 10M04SAM153I7G 10M04SCM153I7G
Brand Intel Intel Intel Intel Intel
Package 153-MBGA (M153), 8x8 mm 153-MBGA (M153) - same 153-MBGA (M153) - same 153-MBGA (M153) - same 153-MBGA (M153) - same
Logic Elements 8,000 LE 8,000 LE 8,000 LE 4,000 LE (-50%) 4,000 LE (-50%)
Embedded Memory 378 Kbit M9K 378 Kbit M9K 378 Kbit M9K 189 Kbit M9K (-50%) 189 Kbit M9K (-50%)
Maximum User I/O 112 112 112 112 112
Temperature Range -40 °C to +100 °C (I7) -40 °C to +100 °C (I7) 0 °C to +85 °C (C8) -40 °C to +100 °C (I7) 0 °C to +85 °C (C8)
DSP Multipliers (18x18) 24 24 24 16 (-33%) 16 (-33%)
Configuration Mode Single image, flash (S) Core-only, flash (C) Single image, flash (S) Single image, flash (S) Core-only, flash (C)
Unit Price (qty 1, USD) 12.50 11.80 10.20 9.50 8.85

Key Differentiators

  • Industrial temperature range with same package and pinout as commercial variant (vs 10M08SAM153C8G)
  • Single-image configuration mode for simpler firmware flow (vs 10M08SCM153I7G)
  • Highest logic density in the 10M08 family at this package size (vs 10M04SAM153I7G)

Design Notes

Estimated: The 0.5 mm-pitch MBGA-153 footprint requires a 4-layer PCB minimum with laser-drilled microvias (0.1 mm via pad, 0.2 mm drill). Use 0.4 mm BGA land-pad diameter with non-solder-mask-defined (NSMD) pads to maximize solder joint reliability. Power-plane decoupling must place 1 µF X7R 0402 capacitors within 1 mm of every VCCIO and VCCINT ball; a single 100 µF tantalum or polymer cap supplies bulk hold-up during configuration flash read. Reference the Intel MAX 10 hardware design guidelines chapter for the full checklist.

Estimated: Worst-case 10M08 power dissipation is approximately 1.5 W when all 8K LE toggle at 100 MHz I/O with the PLL at full speed. With θJA around 28 °C/W for the MBGA-153 package on a 4-layer JEDEC test board, junction temperature rise above ambient is roughly 42 °C. For sealed enclosures without airflow, derate the clock frequency or use thermal vias under the center ground balls to keep Tj below +100 °C for industrial temperature-grade parts.

Do not leave unused GPIO floating - configure them as 'tri-stated input with weak pull-up' in the Quartus Pin Planner to avoid shoot-through current on the I/O buffers. Always assign CONF_DONE and nSTATUS to dedicated JTAG-style balls, not general-purpose I/O, otherwise in-system programming will fail. When migrating between speed grades (I7 vs C8), verify that timing closure still meets your Fmax target - the C8 part is approximately 25% slower than the I7 part at the same VCCINT.

The 10M08SAM153I7G requires three separate supply rails: VCCINT (1.2 V core), VCCA (2.5 V PLL analog), and VCCIO_x (1.2 V to 3.3 V per I/O bank). Power-on sequencing mandates VCCA before or simultaneously with VCCINT to prevent latch-up; a power-good supervisory IC such as the ADM1184 enforces this. Use a separate LDO for VCCA to keep PLL jitter below 200 ps peak-peak; sharing VCCA with a noisy digital rail will degrade the ADC SNR by 3-5 dB.

Route all differential pairs (LVDS) with 100 Ω differential impedance and length-matched within 5 mils. Place the 50 MHz or 100 MHz clock source within 50 mm of the CLK input ball and surround it with a guard ring tied to GND to reduce EMI. For JTAG chain debugging, add 4.7 kΩ pull-ups on TCK and TMS to prevent spurious configuration during board bring-up. Reference the MAX 10 pin connection guidelines PDF chapter 8 for ball-by-ball layout recommendations.

Compliance Information

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

RoHS compliant per verified web data. Not AEC-Q100 qualified - this is the industrial-grade MAX 10 variant. Halogen-free status not explicitly stated in verified data; marked unknown.

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 MAX 10 10M08SAM153I7G 10M08SCM153I7G 10M04SAM153I7G FPGA field programmable gate array CPLD programmable logic logic element (LE) M9K embedded memory DSP block MBGA-153 FineLine BGA RoHS REACH JEDEC AEC-Q100 industrial temperature grade JTAG PLL ADC Quartus Prime instant-on configuration
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