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| Image | Part Number | Manufacturer | Description | Series | Operating Temperature | Packaging | Mounting Type | RoHS Status | Manufacturer Part Number | Type | Lead Free Status | Package / Case |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| ATF1508ASL-25AU100 | Micrel / Microchip Technology | IC CPLD 128MC 25NS 100TQFP | ATF15xx | -40°C ~ 85°C (TA) | Tray | Surface Mount | - | - | - | - | 100-TQFP | |
| ISPLSI 5384VE-80LB272I | Lattice Semiconductor | IC CPLD 384MC 12NS 272BGA | ispLSI® 5000VE | -40°C ~ 85°C (TA) | Tray | Surface Mount | - | - | - | - | 272-BBGA | |
| EPM7256AETC100-10 | Intel® FPGAs | IC CPLD 256MC 10NS 100TQFP | MAX® 7000A | 0°C ~ 70°C (TA) | Tray | Surface Mount | - | - | - | - | 100-TQFP | |
| ISPLSI 2128A-80LTN176I | Lattice Semiconductor | IC CPLD 128MC 15NS 176TQFP | ispLSI® 2000A | -40°C ~ 85°C (TA) | Tray | Surface Mount | - | - | - | - | 176-LQFP | |
| LA4128V-75TN144E | Lattice Semiconductor | IC CPLD 128MC 7.5NS 144TQFP | LA-ispMACH | -40°C ~ 125°C (TA) | Tray | Surface Mount | - | - | - | - | 144-LQFP | |
| GAL20RA10B-20LPI | Lattice Semiconductor | IC CPLD 10MC 20NS 24DIP | GAL®20RA10 | -40°C ~ 85°C (TA) | Tube | Through Hole | - | - | - | - | 24-DIP (0.300", 7.62mm) | |
| 5M80ZT100I5N | Altera (Intel® Programmable Solutions Group) | IC CPLD 64MC 7.5NS 100TQFP | MAX® V | -40°C ~ 100°C (TJ) | Tray | Surface Mount | - | - | - | - | 100-TQFP | |
| M4A5-128/64-12YI | Lattice Semiconductor | IC CPLD 128MC 12NS 100QFP | ispMACH® 4A | -40°C ~ 85°C (TA) | Tray | Surface Mount | - | - | - | - | 100-BQFP | |
| XCR3512XL-7FTG256C | Xilinx | IC CPLD 512MC 7NSNS 256BGA | CoolRunner XPLA3 | 0°C ~ 70°C (TA) | Tray | Surface Mount | - | - | - | - | 256-LBGA | |
| ISPGAL22V10AV-5LJ | Lattice Semiconductor | IC CPLD 10MC 5NS 28PLCC | ispGAL™22V10 | 0°C ~ 75°C (TA) | Tube | Surface Mount | - | - | - | - | 28-LCC (J-Lead) |
CPLDs are programmable logic devices that contain configurable logic blocks and interconnects similar to FPGAs but with a smaller capacity and simpler architecture. CPLDs are often used in applications requiring glue logic, interface bridging, and simple state machine implementations. They offer advantages such as fast design turnaround, low power consumption, and predictable timing characteristics, making them suitable for a wide range of embedded system designs.