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Free-Space Quantum Key Distribution (QKD) Demonstration

Free-Space Quantum Key Distribution (QKD) Demonstration

Context

  • QNu Labs, in collaboration with BISAG-N and IIT Gandhinagar, has successfully demonstrated India’s first free-space Quantum Key Distribution (QKD) link over a distance of 5.56 km.

About Quantum Key Distribution (QKD)

  • QKD is a quantum-cryptographic technique used to securely distribute encryption keys between two parties.
  • It uses the principles of quantum mechanics to detect attempts to intercept or measure the quantum information being transmitted.
  • Free-space QKD: Transmits quantum signals through the atmosphere using free-space optical channels, rather than optical fibres.

Key Highlights of the Demonstration

  • This field trial marks a shift from laboratory experiments to real-world atmospheric quantum communication.
  • Unlike fibre-based links, free-space QKD sends quantum signals through open air, which is the basis for future satellite-linked quantum networks.
  • Test messages were successfully encrypted and decrypted end to end using the generated keys.
  • The demonstration combined two complementary layers of security:
  • Hardware-based QKD: QNu Labs’ Armos generated and distributed quantum-secure keys through a free-space optical channel.
  • Post-Quantum Cryptography (PQC): BISAG-N’s Vedic Kavach combines post-quantum cryptography and quantum random number generation for end-to-end encryption and decryption of test messages.

Performance Highlights

  • The Quantum Bit Error Rate stayed below 5%, indicating a stable and usable quantum channel.
  • Secure keys were generated at 230-260 bits per second.
  • Rates at this level are modest, but they are enough to periodically refresh encryption keys for protected communication.

Key Application of Free-Space QKD

  • Quantum-era cybersecurity: Helps address emerging threats posed by quantum computers to conventional cryptographic systems.
  • Long-distance communication: Provides a pathway towards developing longer-range quantum-secure networks.
  • Satellite-based QKD: Standard fiber-optic cables suffer high signal loss over long distances (~100–150 km). FSO-QKD serves as the baseline technology for space-to-ground links (e.g., connecting LEO satellites to ground stations).
  • Secure critical infrastructure: Can strengthen security of strategic, governmental and other sensitive communications.
  • Indigenous capability: Demonstrates India’s growing capacity in home-grown quantum communication technologies.
  • Defense & Tactical Military Operations: Line-of-sight optical signals operate outside the radio frequency (RF) spectrum, making them immune to conventional RF jamming and electronic warfare.
  • Autonomous Driving Infrastructure: Secures Vehicle-to-Infrastructure (V2I) and Vehicle-to-Vehicle (V2V) communications to prevent malicious tampering, spoofing, or hijacking of autonomous vehicle traffic control systems.

Conclusion

India’s first 5.56-km free-space QKD demonstration represents an important advancement in indigenous quantum communication. The convergence of QKD-based hardware security and post-quantum cryptography can help India prepare its communication infrastructure for the emerging quantum era.

Important CTC From this article :

Quantum Key Distribution, QNu Labs