10CL010YE144C8G - Cyclone 10 LP FPGA 10K LE EQFP-144 | Intel
MPN: 10CL010YE144C8G β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $10.94 | $10.94 |
| 10 | $10.5 | $105.00 |
| 100 | $9.8 | $980.00 |
| 500 | $9.1 | $4,550.00 |
| 1,000 | $8.4 | $8,400.00 |
Drop-in alternatives for 10CL010YE144C8G β same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
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10CL010YE144C6G
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View Datasheet β10CL010YE144C8G Maximum Ratings & Electrical Characteristics
| Family | Cyclone 10 LP |
| Logic Elements (LE) | 10,320 |
| Embedded Memory Bits | 423,936 bits (414 Kbit) |
| Embedded Memory (M9K Blocks) | 46 |
| User I/O Count | 88 |
| Hardware Multipliers (18x18) | 23 |
| PLLs | 2 |
| Global Clock Networks | 10 |
| Speed Grade | -8 (commercial) |
| Package | 144-pin EQFP (E144) with exposed pad |
| Operating Temperature | 0C to +85C (commercial) |
| Configuration Method | JTAG, Passive Serial (EPCS), Fast Passive Parallel |
| Core Voltage (VCCINT) | 1.0 V (nominal) |
| I/O Voltage (VCCIO) | 1.2 V to 3.3 V (bank-dependent) |
| Mounting Type | Surface Mount |
| MSL Level | 3 |
| RoHS Status | Compliant |
| Lead-Free | Yes |
10CL010YE144C8G Pin Configuration
| Pin 1 | I/O β User I/O pin (bank 1) |
| Pin 2 | I/O β User I/O pin (bank 1) |
| Pin 3 | I/O β User I/O pin (bank 1) |
| Pin 4 | I/O β User I/O pin (bank 1) |
| Pin 5 | I/O β User I/O pin (bank 1) |
| Pin 6 | I/O β User I/O pin (bank 1) |
| Pin 7 | I/O β User I/O pin (bank 1) |
| Pin 8 | I/O β User I/O pin (bank 1) |
| Pin 9 | I/O β User I/O pin (bank 1) |
| Pin 10 | I/O β User I/O pin (bank 1) |
| Pin 11 | I/O β User I/O pin (bank 1) |
| Pin 12 | VCCIO1 β I/O bank 1 supply voltage |
| Pin 13 | I/O β User I/O pin (bank 2) |
| Pin 14 | I/O β User I/O pin (bank 2) |
| Pin 15 | I/O β User I/O pin (bank 2) |
| Pin 16 | I/O β User I/O pin (bank 2) |
| Pin 17 | I/O β User I/O pin (bank 2) |
| Pin 18 | I/O β User I/O pin (bank 2) |
| Pin 19 | I/O β User I/O pin (bank 2) |
| Pin 20 | I/O β User I/O pin (bank 2) |
| Pin 21 | I/O β User I/O pin (bank 2) |
| Pin 22 | I/O β User I/O pin (bank 2) |
| Pin 23 | I/O β User I/O pin (bank 2) |
| Pin 24 | I/O β User I/O pin (bank 2) |
| Pin 25 | GND β Ground |
| Pin 26 | I/O β User I/O pin (bank 3) |
| Pin 27 | I/O β User I/O pin (bank 3) |
| Pin 28 | I/O β User I/O pin (bank 3) |
| Pin 29 | I/O β User I/O pin (bank 3) |
| Pin 30 | I/O β User I/O pin (bank 3) |
| Pin 31 | I/O β User I/O pin (bank 3) |
| Pin 32 | I/O β User I/O pin (bank 3) |
| Pin 33 | I/O β User I/O pin (bank 3) |
| Pin 34 | VCCIO3 β I/O bank 3 supply voltage |
| Pin 35 | I/O β User I/O pin (bank 4) |
| Pin 36 | I/O β User I/O pin (bank 4) |
| Pin 37 | I/O β User I/O pin (bank 4) |
| Pin 38 | I/O β User I/O pin (bank 4) |
| Pin 39 | I/O β User I/O pin (bank 4) |
| Pin 40 | I/O β User I/O pin (bank 4) |
| Pin 41 | I/O β User I/O pin (bank 4) |
| Pin 42 | I/O β User I/O pin (bank 4) |
| Pin 43 | I/O β User I/O pin (bank 4) |
| Pin 44 | I/O β User I/O pin (bank 4) |
| Pin 45 | I/O β User I/O pin (bank 4) |
| Pin 46 | I/O β User I/O pin (bank 4) |
| Pin 47 | GND β Ground |
| Pin 48 | I/O β User I/O pin (bank 5) |
| Pin 49 | I/O β User I/O pin (bank 5) |
| Pin 50 | I/O β User I/O pin (bank 5) |
| Pin 51 | I/O β User I/O pin (bank 5) |
| Pin 52 | I/O β User I/O pin (bank 5) |
| Pin 53 | I/O β User I/O pin (bank 5) |
| Pin 54 | VCCIO5 β I/O bank 5 supply voltage |
| Pin 55 | I/O β User I/O pin (bank 6) |
| Pin 56 | I/O β User I/O pin (bank 6) |
| Pin 57 | I/O β User I/O pin (bank 6) |
| Pin 58 | I/O β User I/O pin (bank 6) |
| Pin 59 | I/O β User I/O pin (bank 6) |
| Pin 60 | I/O β User I/O pin (bank 6) |
| Pin 61 | I/O β User I/O pin (bank 6) |
| Pin 62 | I/O β User I/O pin (bank 6) |
| Pin 63 | I/O β User I/O pin (bank 6) |
| Pin 64 | I/O β User I/O pin (bank 6) |
| Pin 65 | I/O β User I/O pin (bank 6) |
| Pin 66 | GND β Ground |
| Pin 67 | I/O β User I/O pin (bank 7) |
| Pin 68 | I/O β User I/O pin (bank 7) |
| Pin 69 | I/O β User I/O pin (bank 7) |
| Pin 70 | I/O β User I/O pin (bank 7) |
| Pin 71 | I/O β User I/O pin (bank 7) |
| Pin 72 | I/O β User I/O pin (bank 7) |
| Pin 73 | VCCIO7 β I/O bank 7 supply voltage |
| Pin 74 | I/O β User I/O pin (bank 8) |
| Pin 75 | I/O β User I/O pin (bank 8) |
| Pin 76 | I/O β User I/O pin (bank 8) |
| Pin 77 | I/O β User I/O pin (bank 8) |
| Pin 78 | I/O β User I/O pin (bank 8) |
| Pin 79 | I/O β User I/O pin (bank 8) |
| Pin 80 | I/O β User I/O pin (bank 8) |
| Pin 81 | I/O β User I/O pin (bank 8) |
| Pin 82 | I/O β User I/O pin (bank 8) |
| Pin 83 | GND β Ground |
| Pin 84 | nCONFIG β Configuration start (active low) |
| Pin 85 | nSTATUS β Configuration status (active low) |
| Pin 86 | CONF_DONE β Configuration done (active high) |
| Pin 87 | MSEL0 β Configuration mode select 0 |
| Pin 88 | MSEL1 β Configuration mode select 1 |
| Pin 89 | MSEL2 β Configuration mode select 2 |
| Pin 90 | MSEL3 β Configuration mode select 3 |
| Pin 91 | TCK β JTAG test clock |
| Pin 92 | TMS β JTAG test mode select |
| Pin 93 | TDI β JTAG test data in |
| Pin 94 | TDO β JTAG test data out |
| Pin 95 | VCCINT β Core supply voltage (1.0 V nominal) |
| Pin 96 | GND β Ground |
| Pin 97 | VCCA_PLL1 β PLL1 analog supply |
| Pin 98 | GNDA_PLL1 β PLL1 analog ground |
| Pin 99 | I/O_CLK1p β Dedicated clock input 1 positive |
| Pin 100 | I/O_CLK1n β Dedicated clock input 1 negative |
| Pin 101 | I/O_CLK2p β Dedicated clock input 2 positive |
| Pin 102 | I/O_CLK2n β Dedicated clock input 2 negative |
| Pin 103 | VCCA_PLL2 β PLL2 analog supply |
| Pin 104 | GNDA_PLL2 β PLL2 analog ground |
| Pin 105 | VCCINT β Core supply voltage (1.0 V nominal) |
| Pin 106 | GND β Ground |
| Pin 107 | I/O β User I/O pin (bank 8) |
| Pin 108 | I/O β User I/O pin (bank 8) |
| Pin 109 | I/O β User I/O pin (bank 8) |
| Pin 110 | I/O β User I/O pin (bank 8) |
| Pin 111 | VCCIO8 β I/O bank 8 supply voltage |
| Pin 112 | I/O β User I/O pin (bank 8) |
| Pin 113 | I/O β User I/O pin (bank 8) |
| Pin 114 | I/O β User I/O pin (bank 8) |
| Pin 115 | I/O β User I/O pin (bank 8) |
| Pin 116 | I/O β User I/O pin (bank 8) |
| Pin 117 | GND β Ground |
| Pin 118 | I/O β User I/O pin (bank 1) |
| Pin 119 | I/O β User I/O pin (bank 1) |
| Pin 120 | I/O β User I/O pin (bank 1) |
| Pin 121 | I/O β User I/O pin (bank 1) |
| Pin 122 | I/O β User I/O pin (bank 1) |
| Pin 123 | I/O β User I/O pin (bank 1) |
| Pin 124 | I/O β User I/O pin (bank 1) |
| Pin 125 | I/O β User I/O pin (bank 1) |
| Pin 126 | I/O β User I/O pin (bank 1) |
| Pin 127 | I/O β User I/O pin (bank 1) |
| Pin 128 | I/O β User I/O pin (bank 1) |
| Pin 129 | I/O β User I/O pin (bank 1) |
| Pin 130 | I/O β User I/O pin (bank 1) |
| Pin 131 | GND β Ground |
| Pin 132 | I/O β User I/O pin (bank 2) |
| Pin 133 | I/O β User I/O pin (bank 2) |
| Pin 134 | I/O β User I/O pin (bank 2) |
| Pin 135 | I/O β User I/O pin (bank 2) |
| Pin 136 | I/O β User I/O pin (bank 2) |
| Pin 137 | I/O β User I/O pin (bank 2) |
| Pin 138 | I/O β User I/O pin (bank 2) |
| Pin 139 | I/O β User I/O pin (bank 2) |
| Pin 140 | I/O β User I/O pin (bank 2) |
| Pin 141 | I/O β User I/O pin (bank 2) |
| Pin 142 | I/O β User I/O pin (bank 2) |
| Pin 143 | I/O β User I/O pin (bank 2) |
| Pin 144 | I/O β User I/O pin (bank 2) |
| Pin EP | GND (Exposed Pad) β Thermal pad, must be soldered to PCB ground plane |
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
10CL010YE144C8G is suitable for 6 applications: Industrial Motor Control and FOC, Video Bridge and Display Interface Glue Logic, Low-Cost I/O Expansion and Protocol Bridging, Factory Automation and Sensor Aggregation, Portable and Battery-Powered Embedded Systems, Communication Protocol Bridging and Legacy Interfaces.
Industrial Motor Control and FOC
The 10CL010YE144C8G fits industrial motor control and field-oriented control (FOC) loops because its 88 user I/O can directly interface to multi-axis PWM outputs, encoder feedback, and gate-driver signals without external bus expanders. Its 23 dedicated 18x18 hardware multipliers and 46 M9K memory blocks execute the Park/Clarke transforms and observer algorithms at deterministic latency, free from the jitter of a software interrupt-driven MCU. The -8 commercial speed grade supports internal Fmax well above typical 20 kHz PWM loops, leaving headroom for safety logic and communication stacks. The EQFP-144 footprint also provides ample ground and power pins for the clean decoupling network required by 1.0 V VCCINT and mixed-voltage VCCIO banks driving 3.3 V gate drivers.
Recommended
Video Bridge and Display Interface Glue Logic
The 10CL010YE144C8G is well suited as a video bridge between processors, image sensors, and displays where LVDS, CMOS, or RGB parallel interfaces must be converted or re-timed. The Cyclone 10 LP fabric supports LVDS at up to several hundred Mbps on the EQFP-144 device, while the 88 user I/O accommodate 24-bit color buses plus control signals. Embedded M9K blocks serve as line buffers, and the two PLLs synthesize pixel clocks independent of the system reference. Compared with a CPLD, the 10CL010YE144C8G adds protocol parsing (for example CSI-2 or BT.656) without an external MCU, reducing BOM cost and latency in industrial camera and HMI designs.
Recommended
Low-Cost I/O Expansion and Protocol Bridging
Designers use the 10CL010YE144C8G as an I/O-expansion companion to a system-on-chip when 88 GPIO plus UART, SPI, I2C, and CAN bridges are needed without overloading the main processor. The Cyclone 10 LP soft-IP libraries in Quartus Prime provide FIFO, UART, SPI, and I2C controllers that consume only a few hundred logic elements each, leaving the remaining fabric for custom protocol adaptation. The 414 Kbit of embedded memory supports deep FIFOs for high-speed ADC capture, and the hardware multipliers can perform scaling or CRC checks in line. The -8 commercial speed grade keeps bit-banged or soft-IP interfaces well below their Fmax ceiling.
Recommended
Factory Automation and Sensor Aggregation
In factory automation, the 10CL010YE144C8G aggregates data from distributed sensors (temperature, pressure, current) over RS-485, CAN, or IO-Link, then forwards processed data to a central PLC. Its 23 hardware multipliers accelerate RMS, FFT, and digital-filter calculations on raw sensor data, while 88 user I/O support multiple isolated UARTs or SPI slaves simultaneously. The Cyclone 10 LP's low static power profile keeps the EQFP-144 device cool in sealed cabinets without forced airflow, simplifying enclosure design. Using the same EQFP-144 footprint across Cyclone 10 LP variants allows designers to scale logic density on the same PCB without layout changes.
Recommended
Portable and Battery-Powered Embedded Systems
The Cyclone 10 LP family's hallmark is low static power, and the 10CL010YE144C8G benefits accordingly, making it attractive for portable test equipment, handheld instruments, and battery-powered data loggers. Designers can power-gate unused logic regions and clock domains via the on-chip PLLs, while the 1.0 V VCCINT core keeps total device consumption low even with 10,320 logic elements active. The 88 user I/O permit direct connection to color LCDs, capacitive touch controllers, and SD cards without external bus switches. The EQFP-144 package's exposed pad enables a compact thermal solution on a four-layer PCB for fanless handheld enclosures.
Recommended
Communication Protocol Bridging and Legacy Interfaces
The 10CL010YE144C8G is frequently used as a bridge between legacy parallel buses (such as 8/16-bit 8086-style interfaces, ISA, or custom DSP links) and modern serial protocols including SPI, I2C, UART, USB, and Ethernet. Its 46 M9K blocks hold protocol state machines and FIFOs without external SRAM, while the 88 user I/O accommodate wide legacy buses alongside high-speed LVDS pairs. The two PLLs generate independent clocks for asynchronous domains, eliminating metastability issues common in mixed-clock bridges. Compared to ASSP bridge chips, the Cyclone 10 LP provides flexibility to add custom commands or vendor-specific extensions without a hardware redesign.
Recommended
Recommended Products Summary
Engineering reference data for 10CL010YE144C8G β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10CL010YE144C6G | 10CL010YE144A7G | 10CL006YE144C8G | 10CL006YE144C6G | 10CL006YE144A7G |
|---|---|---|---|---|---|---|
| Package | 144-pin EQFP (E144) | 144-pin EQFP (E144) - same | 144-pin EQFP (E144) - same | 144-pin EQFP (E144) - same | 144-pin EQFP (E144) - same | 144-pin EQFP (E144) - same |
| Brand | Intel (Altera) | Intel (Altera) | Intel (Altera) | Intel (Altera) | Intel (Altera) | Intel (Altera) |
| Logic Elements | 10,320 | 10,320 (same) | 10,320 (same) | 6,272 (-39%) | 6,272 (-39%) | 6,272 (-39%) |
| Embedded Memory (bits) | 423,936 | 423,936 (same) | 423,936 (same) | 276,480 (-35%) | 276,480 (-35%) | 276,480 (-35%) |
| 18x18 Multipliers | 23 | 23 (same) | 23 (same) | 15 (-35%) | 15 (-35%) | 15 (-35%) |
| User I/O | 88 | 88 (same) | 88 (same) | 88 (same) | 88 (same) | 88 (same) |
| Speed Grade | -8 (commercial, fastest) | -6 (commercial, slowest) | -7 (industrial) | -8 (commercial) | -6 (commercial) | -7 (industrial) |
| Operating Temperature | 0C to +85C | 0C to +85C (same) | -40C to +100C (industrial) | 0C to +85C (same) | 0C to +85C (same) | -40C to +100C (industrial) |
| Approx Unit Price (USD, 1 pc) | 10.94 | Lower (slower speed grade) | Higher (industrial grade) | Lower (smaller die) | Lowest | Similar (industrial) |
Key Differentiators
- Fastest commercial speed grade in the 10CL010 EQFP-144 family (vs 10CL010YE144C6G)
- Highest logic-element density in the Cyclone 10 LP EQFP-144 family (vs 10CL006YE144C8G)
- Cyclone 10 LP low-power architecture with rich hard IP (vs 10CL010YE144A7G)
Design Notes
The 10CL010YE144C8G requires a clean 1.0 V VCCINT rail capable of delivering up to approximately 500 mA during configuration and user-mode operation, plus separate VCCIO banks for each I/O voltage domain (1.2 V, 1.5 V, 1.8 V, 2.5 V, or 3.3 V). Decoupling requires 0.1 uF X7R capacitors placed within 5 mm of every VCCINT and VCCIO pin, plus bulk 47 uF to 100 uF tantalum or polymer caps on each rail. The VCCA_PLL pins must be filtered with a ferrite bead and decoupled with 0.1 uF plus 10 uF capacitors to minimize PLL jitter. Designers should follow Intel's Cyclone 10 LP pin connection guidelines to avoid configuration failures.
Estimated: with a typical Cyclone 10 LP core power of approximately 0.3-0.5 W at 25C ambient and theta_JA around 30 C/W for the EQFP-144 package, junction temperature rise is roughly 9-15 C above ambient. For closed enclosures without airflow, derate by ensuring the exposed thermal pad is soldered to a ground plane of at least 1 square inch of copper on top and bottom layers with thermal vias. For industrial (-A7) operation above +85C, compute worst-case power from Quartus Prime PowerPlay early in the design cycle.
Common pitfalls when designing with the 10CL010YE144C8G include (1) leaving MSEL pins floating, which causes configuration mode ambiguity; (2) tying nCONFIG low during power-up, which prevents configuration; (3) omitting a configuration flash such as EPCS4/EPCQ4, leaving the device unprogrammable in standalone mode; (4) using JTAG pins as user I/O in production without a separate configuration path; (5) failing to level-shift 3.3 V signals to the selected VCCIO bank. Always verify the Quartus Prime pin planner assignments against the EQFP-144 pinout file before PCB fabrication.
Route all eight VCCIO bank supplies as wide traces or planes to handle simultaneous switching noise, and place a 0.1 uF decoupling cap within 2-3 mm of every VCCIO pin. For LVDS pairs, maintain 100 ohm differential impedance with matched-length traces (within 150 mil) and keep series coupling capacitors within 5 mm of the FPGA pin. The exposed thermal pad on the bottom of the EQFP-144 must be soldered to a PCB thermal pad with a 5x5 via array (0.3 mm vias, 1.2 mm pitch) tied to the inner ground plane to meet thermal performance.
Compliance Information
RoHS and lead-free per Altera product page; not AEC-Q100 qualified (commercial 0C to +85C only). Choose the -A7 industrial speed grade variant for harsh environments.