
Dr Chiew Foong Kwong
Associate Professor, Head of Department
Quantum Key Distribution (QKD) is a mechanism for ensuring secure key exchange based on the fundamental principles of quantum mechanics. It has evolved significantly over the past four decades. QKD networks have evolved from experiments to large-scale deployments, enabling longer transmission distances and enhanced security performance. Existing information security relies on modern cryptographic primitives such as Elliptic Curve Diffie–Hellman (ECDH), RSA, and AES. Although AES-256 is considered quantum-resistant, ECDH and RSA cannot withstand attacks by a specific quantum computer. Specifically, with enough quantum bits, Shor’s and Grover’s algorithms can break RSA and ECDH through rapid integer factorization and quantum search capabilities, respectively. Consequently, QKD offers a promising method towards information-theoretic security, using trusted nodes, optical routers, and future quantum repeaters. However, completely replacing current infrastructure with QKD systems is both costly and impractical. Thus, existing QKD can be integrated into current infrastructure, including dark fiber and satellite systems. Previous surveys have primarily focused on isolated aspects such as fiber-based QKD, free-space QKD, or theoretical Internet architectures. There is a lack of a comprehensive survey that simultaneously presents fundamentals, QKD protocols and security, network implementations, and experimental advances. This makes it difficult for readers to grasp the full scope of the field. This survey focuses on QKD from the ground up, covering the essential foundations of QKD, exploring various QKD protocols, concerning different types of attacks, reviewing real-world QKD network deployments, and highlighting challenges and future directions.