Lattice Wins 2026 CyberSecurity Breakthrough Award for Industry-First PQC-Enabled FPGAs
Key Highlights
- ➤Lattice MachXO5-NX TDQ FPGAs win 2026 CyberSecurity Breakthrough Award
- ➤MachXO5-NX TDQ FPGAs feature industry-first post-quantum cryptography capabilities
- ➤FPGAs combine CNSA 2.0-compliant PQC, crypto-agility, and hardware-based trust
Expert Statements
Eric Sivertson, VP of Security Business, Lattice Semiconductor
“As organizations prepare long-lifecycle infrastructure for evolving security requirements, they need solutions that deliver strong protection from day zero”
Eric Sivertson, VP of Security Business, Lattice Semiconductor
“This recognition underscores Lattice's commitment to helping customers deploy hardware-rooted security, crypto-agility, and PQC capabilities in systems shipping today.”
Steve Johansson, Managing Director, CyberSecurity Breakthrough
“This FPGA from Lattice Semiconductor redefines what programmable silicon can deliver.”
Steve Johansson, Managing Director, CyberSecurity Breakthrough
“Organizations need quantum-resistant security now - not in the future, and they require secure, scalable, and adaptable solutions that can be deployed immediately and evolve as standards change.”
Steve Johansson, Managing Director, CyberSecurity Breakthrough
“By combining CNSA 2.0-compliant PQC, crypto-agility, and hardware-based trust in a low power FPGA, Lattice MachXO5-NX TDQ FPGAs enable quantum-ready security to be deployed today.”
Lattice Wins 2026 CyberSecurity Breakthrough Award for Industry-First PQC-Enabled FPGAs
Lattice Semiconductor (NASDAQ: LSCC), the low power programmable and platform firmware leader, today announced its Lattice MachXO5™-NX TDQ FPGA family was named a 2026 CyberSecurity Breakthrough Award winner in the “Post-quantum cryptography (PQC) Solution of the Year” category. Industry-first PQC-enabled Lattice MachXO5-NX TDQ FPGAs equip modern infrastructure to withstand quantum-enabled cyberattacks, combining robust security, proven reliability, and the flexibility to adapt as cryptographic standards evolve.
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