XC2C256-7PQ208C
- Mfr.Part #
- XC2C256-7PQ208C
- Manufacturer
- AMD Xilinx
- Package / Case
- PQFP
- Datasheet
- Download
- Description
- IC CPLD 256MC 6.7NS 208QFP
- Stock
- 1,557
- In Stock :
- 1,557
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- Manufacturer :
- AMD Xilinx
- Product Category :
- CPLDs (Complex Programmable Logic Devices)
- Output Function :
- MACROCELL
- Mounting Type :
- Surface Mount
- Peak Reflow Temperature (Cel) :
- 225
- Speed Grade :
- 7
- Number of Logic Blocks (LABs) :
- 16
- Max Operating Temperature :
- 70°C
- Voltage Supply - Internal :
- 1.7 V ~ 1.9 V
- Moisture Sensitivity Level (MSL) :
- 3 (168 Hours)
- Terminal Finish :
- Tin/Lead (Sn85Pb15)
- Time@Peak Reflow Temperature-Max (s) :
- 30
- Supplier Device Package :
- 208-PQFP (28x28)
- Supply Voltage :
- 1.8V
- Programmable Logic Type :
- FLASH PLD
- HTS Code :
- 8542.39.00.01
- Mount :
- Surface Mount
- Temperature Grade :
- COMMERCIAL
- Base Part Number :
- XC2C256
- Height Seated (Max) :
- 4.1mm
- Width :
- 28mm
- In-System Programmable :
- yes
- Terminal Pitch :
- 0.5mm
- Frequency (Max) :
- 152MHz
- Length :
- 28mm
- Supply Voltage-Max (Vsup) :
- 1.9V
- Number of Pins :
- 208
- JESD-609 Code :
- e0
- Qualification Status :
- Not Qualified
- ECCN Code :
- EAR99
- Operating Supply Voltage :
- 1.8V
- Packaging :
- Tray
- Number of Terminations :
- 208
- Number of Gates :
- 6000
- Delay Time tpd(1) Max :
- 6.7ns
- Package / Case :
- PQFP
- Terminal Form :
- Gull wing
- Additional Feature :
- REAL DIGITAL DESIGN TECHNOLOGY
- Pbfree Code :
- No
- Series :
- CoolRunner II
- Propagation Delay :
- 7.5 ns
- JTAG BST :
- yes
- Min Operating Temperature :
- 0°C
- Number of Macro Cells :
- 256
- RoHS Status :
- Non-RoHS Compliant
- Terminal Position :
- QUAD
- Number of Logic Elements/Blocks :
- 16
- Pin Count :
- 208
- Operating Temperature :
- 0°C ~ 70°C (TA)
- Programmable Type :
- In System Programmable
- Number of I/O :
- 173
- Datasheets
- XC2C256-7PQ208C

CPLDs AMD Xilinx XC2C256-7PQ208C Overview
The AMD Xilinx XC2C256-7PQ208C, part of the sophisticated range of CPLDs (Complex Programmable Logic Devices), offers a robust solution for high-speed digital signal processing. This component is engineered to meet the demanding needs of modern electronic systems, providing a blend of flexibility, performance, and low power consumption. With its advanced architecture and 208QFP packaging, the XC2C256-7PQ208C delivers quick logic alterations and efficient integration, essential for rapidly evolving technological landscapes. This makes the CPLDs AMD Xilinx XC2C256-7PQ208C an ideal choice for developers looking to enhance system reliability and performance.
XC2C256-7PQ208C Features
The XC2C256-7PQ208C is packed with features that leverage its capabilities in a wide range of applications. Key features include a 256 macrocell count which offers ample logic capacity for complex designs, a fast 6.7 ns propagation delay ensuring high-speed operation, and a compact 208-pin QFP package that fits well in space-constrained applications. Its programmability and reconfigurability make it an excellent choice for iterative design processes, allowing for rapid prototyping and modifications without the need for extensive redesigns.
XC2C256-7PQ208C Applications
- Automotive Systems: The XC2C256-7PQ208C can be used in vehicle control systems, enhancing functionalities such as sensor data processing and actuator control, contributing to smarter and safer automotive technologies.
- Data Communication Equipment: Ideal for use in routers and switches, this CPLD manages data flow efficiently, ensuring robust data handling and improved network performance.
- Industrial Automation: In automation and control systems, the XC2C256-7PQ208C facilitates complex logic operations, improving process control and machine efficiency.
- Consumer Electronics: Utilized in devices such as gaming consoles and smart home systems, it supports intricate logic configurations, enhancing user experience through increased functionality.
- Medical Devices: This CPLD is suitable for medical diagnostic equipment, where precision and reliability are critical, ensuring the accurate functioning and reliability required in medical applications.
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