Quantum-safe IPsec in the banking industry
Rafael J. Vicente, Jaime G\'omez Garc\'ia, Juan P. Brito, Yorlandy Lobaina, Jaime S. Buruaga, Daniel G\'omez Aguado, Miguel \'Angel S\'anchez Serrano, Sim\'on Ovsyannikov, Salah Gherdaoui, Jean-S\'ebastien Pegon, Marco Cofano, Vicente Mart\'in

TL;DR
This paper presents a scalable, interoperable quantum-safe communication architecture for banking networks, integrating classical, quantum, and post-quantum cryptography within a flexible SDN-based DMVPN framework.
Contribution
It introduces a hybrid quantum-safe architecture using SDN for secure, scalable, and interoperable enterprise network communications in the banking sector, validated on a multi-node testbed.
Findings
Demonstrated feasibility of quantum-safe communication in financial networks.
Validated interoperability across diverse QKD implementations and interfaces.
Showed scalability and resilience of the proposed architecture.
Abstract
The emergence of Cryptographically Relevant Quantum Computers (CRQCs) presents a critical threat to classical cryptographic systems, particularly widely adopted protocols such as RSA, Diffie-Hellman (DH), and Elliptic Curve Cryptography (ECC). Given their extensive use in the financial sector, the advent of quantum adversaries compels banking institutions to proactively develop and adopt quantum-safe communication mechanisms. This paper introduces a hybrid quantum-safe architecture, orchestrated via Software-Defined Networking (SDN) key distribution. The proposed framework enables the early integration of Classical Cryptography (CC), Quantum Key Distribution (QKD), and Post-Quantum Cryptography (PQC) within a Dynamic Multipoint Virtual Private Network (DMVPN) environment, providing highly scalable, full-mesh, site-to-site encrypted communications for enterprise networks. This is…
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