LCMXO640E-3MN100C
- Mfr.Part #
- LCMXO640E-3MN100C
- Manufacturer
- Lattice Semiconductor
- Package / Case
- 100-LFBGA, CSPBGA
- Datasheet
- Download
- Description
- IC FPGA 74 I/O 100CSBGA
- Stock
- 27,071
- In Stock :
- 27,071
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- Manufacturer :
- Lattice Semiconductor
- Product Category :
- FPGAs (Field Programmable Gate Array)
- Package / Case :
- 100-LFBGA, CSPBGA
- Pin Count :
- 100
- Reach Compliance Code :
- not_compliant
- Terminal Position :
- BOTTOM
- Packaging :
- Tray
- Number of I/O :
- 74
- Operating Temperature :
- 0°C~85°C TJ
- Time@Peak Reflow Temperature-Max (s) :
- 40
- RAM Size :
- 0B
- Programmable Logic Type :
- FLASH PLD
- Max Frequency :
- 500MHz
- Nominal Supply Current :
- 14mA
- Propagation Delay :
- 4.9 ns
- Series :
- MachXO
- HTS Code :
- 8542.39.00.01
- Length :
- 8mm
- RoHS Status :
- ROHS3 Compliant
- Factory Lead Time :
- 8 Weeks
- Height Seated (Max) :
- 1.35mm
- Output Function :
- MACROCELL
- Terminal Pitch :
- 0.5mm
- Moisture Sensitivity Level (MSL) :
- 3 (168 Hours)
- Base Part Number :
- LCMXO640
- Number of Macro Cells :
- 320
- Qualification Status :
- Not Qualified
- Lead Free :
- Lead Free
- JESD-609 Code :
- e1
- ECCN Code :
- EAR99
- Number of Dedicated Inputs :
- 7
- Pbfree Code :
- yes
- Number of LABs/CLBs :
- 80
- Peak Reflow Temperature (Cel) :
- 260
- Number of Logic Cells :
- 640
- Supply Voltage :
- 1.2V
- Width :
- 8mm
- Number of Logic Elements/Cells :
- 640
- Terminal Finish :
- Tin/Silver/Copper (Sn95.5Ag4.0Cu0.5)
- Operating Supply Current :
- 14mA
- Number of Outputs :
- 74
- Operating Supply Voltage :
- 1.2V
- Voltage - Supply :
- 1.14V~1.26V
- Number of Pins :
- 100
- Terminal Form :
- Ball
- Number of Terminations :
- 100
- Mount :
- Surface Mount
- Memory Type :
- SRAM
- Mounting Type :
- Surface Mount
- Published :
- 2009
- Datasheets
- LCMXO640E-3MN100C

FPGAs Lattice Semiconductor LCMXO640E-3MN100C Overview
Introducing the LCMXO640E-3MN100C from Lattice Semiconductor, a leading figure in the FPGA (Field Programmable Gate Array) market. This device is engineered to deliver high performance and flexibility with its programmable fabric, making it an ideal solution for developers looking to accelerate time-to-market. The LCMXO640E-3MN100C is particularly suited for applications requiring a high I/O count in a compact form factor, thanks to its 100CSBGA package and 74 programmable I/Os. This makes the FPGAs Lattice Semiconductor LCMXO640E-3MN100C a perfect choice for sophisticated, multi-functional electronic devices.
LCMXO640E-3MN100C Features
The LCMXO640E-3MN100C FPGA boasts several key features that stand out in the competitive FPGA market. It includes a robust programmable logic architecture that allows for versatile hardware customization and scalability. The 74 I/O pins provide ample connectivity for various peripherals and components, while the 100CSBGA packaging ensures a minimal footprint on system boards, enhancing the overall design compactness and thermal performance.
LCMXO640E-3MN100C Applications
- Consumer Electronics: In devices like smart watches and gaming consoles, the LCMXO640E-3MN100C offers the necessary processing power and I/O flexibility to manage multiple user interfaces and connectivity options.
- Industrial Automation: This FPGA can be utilized to control machinery in automated production lines, where high reliability and programmable logic capabilities are essential for complex sequential and control tasks.
- Automotive Systems: In automotive applications, such as infotainment systems and advanced driver-assistance systems (ADAS), the LCMXO640E-3MN100C provides robust performance and connectivity to handle real-time processing and data management.
- Telecommunications: Ideal for network equipment such as routers and switches, the FPGA facilitates high-speed data transmission and processing with exceptional efficiency and adaptability.
- Medical Devices: Utilized in medical imaging systems and diagnostic equipment, this FPGA supports complex algorithms for real-time processing and image manipulation, ensuring high precision and reliability in critical healthcare environments.
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