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Quantum Corridor and Toshiba Demonstrate First Cross-State QKD Over Live Commercial Fiber Network

Mohamed Abdel-Kareem
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⚡ Quantum Brief
Quantum Corridor and Toshiba achieved the first U.S. cross-state Quantum Key Distribution (QKD) demonstration on a live commercial fiber network, connecting Illinois and Indiana data centers over 21.8 km. The system used Toshiba’s multiplexed QKD with Ciena’s 800G encryption, delivering 1,500 kbps secure key rates—exceeding expectations—while maintaining 100% throughput and zero packet loss over 48 hours. AES-256-GCM encryption refreshed QKD keys every 90 seconds, proving scalable quantum-secured transport in a high-availability commercial environment. Leaders called it a milestone for quantum-safe communications, targeting defense, finance, and life sciences, with Purdue and Chicago Quantum Exchange backing the Midwest’s quantum infrastructure growth. The test advances Quantum Corridor’s 263-mile "quantum superhighway" plan, part of the Bloch Tech Hub’s broader initiative to build national quantum-resilient networks.
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Quantum Corridor and Toshiba Demonstrate First Cross-State QKD Over Live Commercial Fiber Network Quantum Corridor, in collaboration with Toshiba International Corporation (TIC) and partners, has successfully demonstrated quantum-secured communication using Quantum Key Distribution (QKD) over a live commercial metropolitan fiber network connecting data centers in Illinois and Indiana. This is reported to be the first cross-state QKD demonstration on any commercial carrier network in the U.S.. The demonstration was implemented across a 21.8 km segment of Quantum Corridor’s live high-capacity optical network, connecting the ORD 10 Data Center in Chicago, Illinois, to the Digital Crossroad Data Center in Hammond, Indiana. The experiment validated the use of Toshiba’s multiplexed QKD technology seamlessly integrated with Ciena’s Waveserver 5 800G coherent encryption modules. The system achieved secure key rates averaging 1,500 kbps, far exceeding typical field expectations, and maintained 100% line-rate throughput with zero packet loss over 48 hours of continuous encrypted traffic. The quantum-generated keys were used to deliver AES-256-GCM encryption, with a fresh set of QKD keys obtained every 90 seconds, showcasing the interoperability and scalability of quantum-secured transport in a commercial, high-availability setting. Ryan Lafler, President & CTO of Quantum Corridor, highlighted the achievement as a critical step toward realizing a commercially scalable, quantum-safe communications fabric for the nation’s defense, finance, and life science industries. Dr. Michael Manfra, Director of the Purdue University Quantum Science and Engineering Institute, noted that the achievement marks a significant transition toward commercially viable secure quantum key distribution across state boundaries in the Midwest Quantum heartland. This regional collaboration grew out of the Chicago Quantum Exchange (CQE) partnership program and involved contributions from a University of Chicago graduate student. Quantum Corridor, a member of the Bloch Tech Hub, is building what it states will be the nation’s largest quantum computing superhighway, planned to stretch 263 miles. Read the full announcement here and access the full Quantum Corridor-Toshiba technical white paper here. December 10, 2025 Mohamed Abdel-Kareem2025-12-10T16:12:57-08:00 Leave A Comment Cancel replyComment Type in the text displayed above Δ This site uses Akismet to reduce spam. Learn how your comment data is processed.

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aerospace-defense
partnership
post-quantum-cryptography
quantum-ecosystem
quantum-key-distribution
india-quantum-computing
india-nqm

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Source: Quantum Computing Report

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