LFXP15C-4F256C
- Mfr.Part #
- LFXP15C-4F256C
- Manufacturer
- Lattice Semiconductor
- Package / Case
- 256-BGA
- Datasheet
- Download
- Description
- IC FPGA 188 I/O 256FBGA
- Stock
- 24,832
- In Stock :
- 24,832
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- Manufacturer :
- Lattice Semiconductor
- Product Category :
- FPGAs (Field Programmable Gate Array)
- Length :
- 17mm
- Qualification Status :
- Not Qualified
- Height Seated (Max) :
- 2.1mm
- Voltage - Supply :
- 1.71V~3.465V
- Number of Logic Blocks (LABs) :
- 1875
- Mount :
- Surface Mount
- Number of I/O :
- 188
- Pbfree Code :
- No
- Programmable Logic Type :
- FIELD PROGRAMMABLE GATE ARRAY
- Time@Peak Reflow Temperature-Max (s) :
- 30
- Pin Count :
- 256
- Reach Compliance Code :
- not_compliant
- Number of Gates :
- 4
- Memory Size :
- 48.1kB
- Number of Pins :
- 256
- Package / Case :
- 256-BGA
- Number of Terminations :
- 256
- Terminal Pitch :
- 1mm
- Peak Reflow Temperature (Cel) :
- 225
- Base Part Number :
- LFXP15
- RoHS Status :
- Non-RoHS Compliant
- Series :
- XP
- Number of Outputs :
- 188
- Combinatorial Delay of a CLB-Max :
- 0.53 ns
- RAM Size :
- 40.5kB
- Number of CLBs :
- 1932
- Terminal Finish :
- Tin/Lead (Sn63Pb37)
- Number of Logic Cells :
- 1932
- Mounting Type :
- Surface Mount
- Operating Temperature :
- 0°C~85°C TJ
- Total RAM Bits :
- 331776
- Width :
- 17mm
- Moisture Sensitivity Level (MSL) :
- 3 (168 Hours)
- Number of Logic Elements/Cells :
- 15000
- Operating Supply Voltage :
- 1.8V
- Power Supplies :
- 1.8/2.5/3.3V
- ECCN Code :
- EAR99
- JESD-609 Code :
- e0
- Terminal Position :
- BOTTOM
- Max Frequency :
- 360MHz
- Terminal Form :
- Ball
- Packaging :
- Tray
- Published :
- 2010
- Supply Voltage :
- 1.8V
- Organization :
- 1932 CLBS
- Datasheets
- LFXP15C-4F256C

FPGAs Lattice Semiconductor LFXP15C-4F256C Overview
The LFXP15C-4F256C, manufactured by Lattice Semiconductor, stands out in the market of Field Programmable Gate Arrays (FPGAs). This device offers a versatile solution for developers needing high-speed logic operations in a compact package. Its 256-ball fine pitch BGA (FBGA) package ensures a minimal footprint while providing ample I/O capabilities with 188 pins available. This FPGA is ideal for applications requiring a high degree of programmability and real-time performance adjustments, making it a critical component in both prototyping and full-scale production environments. By integrating this FPGA into your design, you gain not only robust performance but also the reliability expected from a leading provider like Lattice Semiconductor, optimizing both power and cost efficiencies in complex electronic systems.
LFXP15C-4F256C Features
The LFXP15C-4F256C FPGA includes several key features that make it a top choice for developers. Notably, its high I/O count in a compact form factor facilitates versatile design possibilities in space-constrained applications. The device supports a range of logic density options, allowing for customization and scalability depending on project requirements. Advanced security protocols are embedded to ensure intellectual property protection and secure operations, critical in today's technology landscape. Additionally, low power consumption and support for multiple I/O standards extend its usability across various electronic platforms.
LFXP15C-4F256C Applications
- Consumer Electronics: Utilized in devices like smart TVs and gaming consoles where multiple input/output options and high-speed logic are essential.
- Automotive Applications: Employs its robust feature set in automotive infotainment systems and advanced driver-assistance systems (ADAS) to process multiple real-time inputs and outputs efficiently.
- Industrial Automation: Enhances control systems in manufacturing environments by providing scalable logic solutions that adapt to various sensor inputs and control outputs.
- Telecommunications: Serves in base stations and networking equipment where high data throughput and reliability are necessary to manage and route communications efficiently.
- Medical Devices: Applied in medical imaging systems where precision and the ability to handle complex algorithms quickly are critical for accurate diagnostics.
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