Archive/Time-Entangled Quantum Blockchain with Phase Encoding for Classical Data
Time-Entangled Quantum Blockchain with Phase Encoding for Classical Data
Ruwanga Konara, Kasun De Zoysa, Anuradha Mahasinghe et al.
24 juillet 2026
en

Abstract

Rapid progress in quantum computing threatens the long-term security of classical cryptographic primitives, and with them the integrity of contemporary blockchain systems that rely fundamentally on computational hardness assumptions. Hence, quantum-native blockchain architectures have emerged as a conceptual pathway toward information-theoretic disturbance detectability. Two influential approaches have emerged in the literature. The temporal GHZ-state blockchain provides disturbance-detectable tamper sensitivity through entanglement in time, whereas the weighted quantum-hypergraph blockchain achieves high encoding efficiency through phase-based quantum representations of classical information. However, each addresses only part of the problem. In this work, we introduce a hybrid quantum blockchain framework whose primary novelty is the integration of phase-encoded classical data representation with recursively generated temporal GHZ entanglement within a single blockchain architecture. Rather than proposing a new encoding scheme or a new temporal-entanglement construction, the framework combines both mechanisms found in the literature and introduces a corresponding verification procedure for validating phase-encoded temporally entangled blocks. This architecture preserves the physics-based measurement-disturbance detectability of temporal entanglement while enabling more efficient classical-to-quantum data encoding inspired by hypergraph-based phase weighting. The result is a conceptual blockchain model that simultaneously enhances tamper sensitivity and encoding efficiency, providing a coherent foundation for future research on secure and practical quantum-era ledger systems.

IPC Classification

G06

Keywords

time-entangledquantumblockchainphaseencodingclassicaldatareportsrapidprogresscomputingthreatenslong-termsecuritycryptographicprimitivesthemintegritycontemporarysystemsrelyfundamentallycomputationalhardness
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