10CL025YE144A7G - Cyclone 10 LP FPGA 25K LE, 76 I/O, EQFP-144 | Intel
MPN: 10CL025YE144A7G ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $9.26 | $9.26 |
| 10 | $8.42 | $84.20 |
| 100 | $7.65 | $765.00 |
| 500 | $6.95 | $3,475.00 |
| 1,000 | $6.3 | $6,300.00 |
Drop-in alternatives for 10CL025YE144A7G — 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:
10CL016YE144A7G
✅ Drop-In✓ In Stock
$27.95 / Unit
View Datasheet →10CL025YE144C8G
✅ Drop-In✓ In Stock
$36.85 / Unit
View Datasheet →10CL025YE144C6G
✅ Drop-In✓ In Stock
$21.89 / Unit
View Datasheet →10CL025YE144I7G
✅ Drop-In✓ In Stock
$35.8 / Unit
View Datasheet →10CL010YE144A7G
✅ Drop-In✓ In Stock
$19.4 / Unit
View Datasheet →LFE5U-25F-8BG256C
✅ Drop-In📋 Reference alternative (not in catalog)
10CL025YE144A7G Maximum Ratings & Electrical Characteristics
| Family | Cyclone 10 LP |
| Logic Elements | 24,624 LE |
| Embedded Memory | 594 kbit (M9K blocks) |
| Embedded 18x18 Multipliers | 66 |
| General-Purpose PLLs | 4 |
| User I/O Count | 76 |
| Package | 144-pin EQFP (Plastic Enhanced QFP) with exposed pad |
| Core Supply Voltage (VCCINT) | 1.2 V |
| Operating Temperature Range | 0 C to 85 C (commercial, A7 suffix) |
| Speed Grade | -7 |
| Process Technology | Low-power 60 nm |
| Configuration Memory | On-chip flash (instant-on, no external boot PROM) |
| Mounting Type | Surface Mount |
| Packaging | Tray |
| RoHS Status | Compliant |
10CL025YE144A7G Pin Configuration
| Pin 1 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 2 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 3 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 4 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 5 | GND — Ground reference |
| Pin 6 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 7 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 8 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 9 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 10 | VCCIO1A — I/O supply, bank 1A |
| Pin 11 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 12 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 13 | GND — Ground reference |
| Pin 14 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 15 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 16 | VCCIO1B — I/O supply, bank 1B |
| Pin 17 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 18 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 19 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 20 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 21 | GND — Ground reference |
| Pin 22 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 23 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 24 | VCCIO2 — I/O supply, bank 2 |
| Pin 25 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 26 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 27 | GND — Ground reference |
| Pin 28 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 29 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 30 | VCCIO3 — I/O supply, bank 3 |
| Pin 31 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 32 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 33 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 34 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 35 | GND — Ground reference |
| Pin 36 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 37 | VCCIO4 — I/O supply, bank 4 |
| Pin 38 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 39 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 40 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 41 | GND — Ground reference |
| Pin 42 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 43 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 44 | VCCIO5 — I/O supply, bank 5 |
| Pin 45 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 46 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 47 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 48 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 49 | GND — Ground reference |
| Pin 50 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 51 | VCCIO6 — I/O supply, bank 6 |
| Pin 52 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 53 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 54 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 55 | GND — Ground reference |
| Pin 56 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 57 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 58 | VCCIO7 — I/O supply, bank 7 |
| Pin 59 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 60 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 61 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 62 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 63 | GND — Ground reference |
| Pin 64 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 65 | VCCIO8 — I/O supply, bank 8 |
| Pin 66 | CLK0 — Dedicated clock input, positive |
| Pin 67 | CLK0n — Dedicated clock input, negative |
| Pin 68 | GND — Ground reference |
| Pin 69 | CLK1 — Dedicated clock input, positive |
| Pin 70 | CLK1n — Dedicated clock input, negative |
| Pin 71 | VCCAUX — Auxiliary supply (2.5 V) for PLLs |
| Pin 72 | GND — Ground reference |
| Pin 73 | nCONFIG — Configuration start (active-low) |
| Pin 74 | nSTATUS — Configuration status (active-low) |
| Pin 75 | CONFIG_DONE — Configuration complete (open-drain) |
| Pin 76 | GND — Ground reference |
| Pin 77 | TCK — JTAG test clock |
| Pin 78 | TMS — JTAG test mode select |
| Pin 79 | TDI — JTAG test data in |
| Pin 80 | TDO — JTAG test data out |
| Pin 81 | GND — Ground reference |
| Pin 82 | MSEL0 — Configuration mode select 0 |
| Pin 83 | MSEL1 — Configuration mode select 1 |
| Pin 84 | MSEL2 — Configuration mode select 2 |
| Pin 85 | AS_DATA0 — Active Serial data 0 |
| Pin 86 | AS_DATA1 — Active Serial data 1 |
| Pin 87 | AS_CLK — Active Serial clock |
| Pin 88 | AS_nCSO — Active Serial chip select (active-low) |
| Pin 89 | VCCINT — Core supply (1.2 V) |
| Pin 90 | GND — Ground reference |
| Pin 91 | VCCINT — Core supply (1.2 V) |
| Pin 92 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 93 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 94 | I/O_BANK_8 — General-purpose I/O, bank 8 |
| Pin 95 | GND — Ground reference |
| Pin 96 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 97 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 98 | VCCIO7 — I/O supply, bank 7 |
| Pin 99 | I/O_BANK_7 — General-purpose I/O, bank 7 |
| Pin 100 | GND — Ground reference |
| Pin 101 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 102 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 103 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 104 | VCCIO6 — I/O supply, bank 6 |
| Pin 105 | I/O_BANK_6 — General-purpose I/O, bank 6 |
| Pin 106 | GND — Ground reference |
| Pin 107 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 108 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 109 | VCCIO5 — I/O supply, bank 5 |
| Pin 110 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 111 | I/O_BANK_5 — General-purpose I/O, bank 5 |
| Pin 112 | GND — Ground reference |
| Pin 113 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 114 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 115 | VCCIO4 — I/O supply, bank 4 |
| Pin 116 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 117 | I/O_BANK_4 — General-purpose I/O, bank 4 |
| Pin 118 | GND — Ground reference |
| Pin 119 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 120 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 121 | VCCIO3 — I/O supply, bank 3 |
| Pin 122 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 123 | I/O_BANK_3 — General-purpose I/O, bank 3 |
| Pin 124 | GND — Ground reference |
| Pin 125 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 126 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 127 | VCCIO2 — I/O supply, bank 2 |
| Pin 128 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 129 | I/O_BANK_2 — General-purpose I/O, bank 2 |
| Pin 130 | GND — Ground reference |
| Pin 131 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 132 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 133 | VCCIO1B — I/O supply, bank 1B |
| Pin 134 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 135 | I/O_BANK_1B — General-purpose I/O, bank 1B |
| Pin 136 | GND — Ground reference |
| Pin 137 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 138 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 139 | VCCIO1A — I/O supply, bank 1A |
| Pin 140 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 141 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 142 | GND — Ground reference |
| Pin 143 | I/O_BANK_1A — General-purpose I/O, bank 1A |
| Pin 144 | I/O_BANK_1A — General-purpose I/O, bank 1A |
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
10CL025YE144A7G is suitable for 7 applications: Industrial Machine Vision, Motor Control and Robotics, Video Processing and Display Bridging, Factory Automation PLCs, Low-Power IoT Gateways, Portable Medical Instrumentation, LED Display Controllers.
Industrial Machine Vision
The 10CL025YE144A7G's 24,624 logic elements and 66 18x18 multipliers make it well-suited for industrial machine vision pre-processing pipelines where it can perform Bayer demosaicing, Sobel edge detection, and thresholding in parallel across multiple image streams. The 594 kbit embedded M9K memory blocks buffer line-scan data between camera and processor, while the 4 PLLs generate pixel clocks, SDRAM clocks, and Ethernet PHY reference clocks from a single crystal. Its 1.2 V core minimizes heat dissipation in sealed IP67 camera housings.
Recommended
Motor Control and Robotics
For multi-axis motor control and robotic servo loops, the 10CL025YE144A7G's parallel logic fabric can implement up to 8 independent PID controllers at 100 kHz loop rates in a single device. The 66 embedded 18x18 multipliers accelerate Park/Clark transforms and space-vector PWM calculations for Field-Oriented Control (FOC) of 3-phase brushless motors. The 76 user I/Os comfortably handle 24 PWM channels, 8 quadrature encoder inputs, and CAN/RS-485 communications for a 6-axis robotic arm controller.
Recommended
Video Processing and Display Bridging
The 10CL025YE144A7G serves as a low-power video bridge between legacy camera interfaces (BT.601/656, LVDS) and modern MIPI CSI-2 or DisplayPort sinks, supporting up to 1080p60 with simple color-space conversion. The Cyclone 10 LP's hardware multipliers perform deinterlacing and scaling, while 594 kbit of embedded RAM holds scan-line buffers and frame-rate conversion FIFOs. The 1.2 V core voltage enables fan-less operation in signage and kiosk enclosures where reliability is critical.
Recommended
Factory Automation PLCs
The 10CL025YE144A7G's 76 user I/Os combined with on-chip flash configuration memory provide a deterministic, instant-on Programmable Logic Controller (PLC) platform for factory floor applications requiring <100 ms power-to-ready time. The device can implement IEC 61131-3 soft-CPU cores, EtherCAT slave controllers, and PROFIBUS interfaces in fabric. Hardened by the -40C to 100C industrial temperature option (10CL025YE144I7G), it replaces legacy microcontroller-based PLCs in harsh environments.
Recommended
Low-Power IoT Gateways
Battery-powered IoT gateways benefit from the 10CL025YE144A7G's low static power (~125 mW typical), instant-on flash configuration, and ability to run multiple wireless protocol stacks concurrently (LoRa, BLE 5.0, Zigbee) in soft IP. The 24,624 LE fabric can host a RISC-V soft CPU (e.g., VexRiscv) for local MQTT processing, while the 4 PLLs derive radio clocks from a single 32.768 kHz crystal. The exposed-pad EQFP package provides efficient thermal dissipation for always-on operation.
Recommended
Portable Medical Instrumentation
The 10CL025YE144A7G's deterministic timing, low power, and DSP-rich fabric support portable patient-monitoring devices such as pulse oximeters, ECG Holter monitors, and ultrasound front-ends. The 66 embedded 18x18 multipliers accelerate FFT and digital filtering of biosignals, while the 594 kbit M9K memory holds FIR/IIR coefficient tables and sample buffers. Operating from a 1.2 V core reduces battery drain, extending continuous-monitoring runtime beyond 24 hours on a single 1500 mAh cell.
Recommended
LED Display Controllers
Driving large LED video walls requires precise parallel control of thousands of PWM channels - a task perfectly matched to the 10CL025YE144A7G's parallel logic fabric. The device can scan up to 32 output channels per logic block while performing gamma correction and color-depth enhancement in real time. The 4 PLLs generate pixel clocks for HUB75 LED panels, and the 594 kbit embedded RAM holds display refresh buffers, eliminating the need for external SRAM in many mid-size installations.
Recommended
Recommended Products Summary
Engineering reference data for 10CL025YE144A7G — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10CL016YE144A7G | 10CL025YE144C8G | 10CL025YE144C6G | 10CL025YE144I7G | 10CL010YE144A7G |
|---|---|---|---|---|---|---|
| Brand | Intel | Intel | Intel | Intel | Intel | Intel |
| Package | EQFP-144 (22x22 mm) | EQFP-144 (22x22 mm) - same | EQFP-144 (22x22 mm) - same | EQFP-144 (22x22 mm) - same | EQFP-144 (22x22 mm) - same | EQFP-144 (22x22 mm) - same |
| Logic Elements | 24,624 LE | 16,624 LE (-33%) | 24,624 LE (same) | 24,624 LE (same) | 24,624 LE (same) | 10,320 LE (-58%) |
| Embedded Memory | 594 kbit | 504 kbit (-15%) | 594 kbit (same) | 594 kbit (same) | 594 kbit (same) | 414 kbit (-30%) |
| 18x18 Multipliers | 66 | 56 (-15%) | 66 (same) | 66 (same) | 66 (same) | 46 (-30%) |
| User I/O | 76 | 78 (+2) | 76 (same) | 76 (same) | 76 (same) | 76 (same) |
| Speed Grade | -7 | -7 | -8 (slower) | -6 (faster) | -7 | -7 |
| Operating Temperature | 0 C to 85 C (commercial) | 0 C to 85 C | 0 C to 85 C | 0 C to 85 C | -40 C to 100 C (industrial) | 0 C to 85 C |
| Core Voltage | 1.2 V | 1.2 V | 1.2 V | 1.2 V | 1.2 V | 1.2 V |
| Configuration Memory | On-chip flash (instant-on) | On-chip flash | On-chip flash | On-chip flash | On-chip flash | On-chip flash |
Key Differentiators
- Highest logic density in the Cyclone 10 LP 144-pin EQFP package family (vs 10CL016YE144A7G)
- On-chip flash configuration provides instant-on without external boot PROM (vs 10CL010YE144A7G)
- Commercial temperature variant offers lower cost than industrial-grade (vs 10CL025YE144I7G)
Design Notes
Estimated: At 25 C ambient with 50% logic utilization and 100 MHz typical toggle rate, the 10CL025YE144A7G draws approximately 250 mA from VCCINT (1.2 V). Each VCCIO bank can draw up to 100 mA at 3.3 V depending on I/O toggle rate and loading. Provide a star-routed power distribution network with one 100 nF ceramic decoupling cap per VCC pin and one 10 uF bulk capacitor per supply rail placed within 25 mm of the package. The VCCAUX 2.5 V rail for PLLs requires a ferrite bead filter to isolate PLL analog supply from digital switching noise. Refer to the Cyclone 10 LP device handbook PowerPlay section for tool-estimated power figures specific to your design.
Route all eight VCCIO bank supplies independently to allow mixed-voltage I/O standards. Each bank should have its own 100 nF + 10 uF decoupling pair, with the 100 nF cap placed within 2 mm of the device pin. The exposed thermal pad (EPAD) must be soldered to a continuous ground plane with at least 16 thermal vias (0.3 mm drill, 0.5 mm pitch) to provide both electrical reference and thermal dissipation. Use a 4-layer PCB with dedicated ground and power planes for designs above 50 MHz internal clock rates to maintain signal integrity.
Do not leave unused I/O pins floating. Configure them as outputs driving ground or as inputs with internal weak pull-up enabled to prevent excessive shoot-through current. The nCONFIG pin must be held high for at least 100 us after all power rails reach regulation before initiating configuration. When using AS (Active Serial) mode, ensure the configuration flash clock (AS_CLK) does not exceed 40 MHz at the FPGA pin and that the series resistor (typically 33 ohm) is placed close to the FPGA driver. Refer to AN 524: Using the Cyclone 10 LP Configuration Bitstream Error Detection feature for production designs.
Estimated: At full logic utilization (24,624 LE at 100 MHz, 1.2 V core), the device can dissipate up to 2.0 W requiring either 6 C/W thermal dissipation path or airflow of 1 m/s. The EQFP-144 with soldered exposed pad achieves theta_JA of approximately 18 C/W on a 4-layer JEDEC test board, which keeps junction temperature below 100 C at 70 C ambient for typical designs. For industrial temperature designs using 10CL025YE144I7G variant, derate 10% to account for elevated ambient operation. Use Quartus Prime PowerPlay Power Analyzer for design-specific thermal analysis.
Compliance Information
RoHS and lead-free compliant per Intel product declaration. Not AEC-Q100 qualified; for automotive applications use AEC-Q100 qualified Cyclone 10 LP automotive variants or higher-grade families.