Quantum Cryptographic Protocols for Secure Communication Systems
Keywords:
quantum cryptography, QKD, BB84, MDI-QKD, Twin-Field QKD, quantum key distribution, quantum network, information-theoretic securityAbstract
Quantum Key Distribution (QKD) provides information-theoretic security guaranteed by the laws of physics rather than computational hardness -- making it the primary tool for quantum-secure communication against harvest-now-decrypt-later quantum threats. This paper proposes the Quantum Cryptographic Protocol Design and Analysis (QCPDA) framework, evaluating six quantum cryptographic protocols -- BB84, E91, MDI-QKD, Twin-Field QKD (TF-QKD), Quantum Digital Signatures (QDS), and Quantum Secret Sharing (QSS) -- across five dimensions: unconditional security, key generation rate, maximum secure distance, noise tolerance, and implementation complexity. TF-QKD achieves the longest secure distance (605 km on ultra-low-loss fibre) but lowest key rate. MDI-QKD eliminates all detector side-channels at moderate key rates. BB84 achieves the highest composite QCPDA score (8.24) due to commercial maturity. QCPDA provides a protocol selection guide mapping deployment scenarios (metropolitan, intercity, long-haul, multi-party) to optimal protocols, and discusses the complementary roles of QKD and NIST post-quantum cryptography standards for quantum-secure infrastructure.
