A High-Dimensional Quantum Blockchain Protocol Based on Time- Entanglement
Akta\c{s}, Arzu, Y{\i}lmaz, \.Ihsan

TL;DR
This paper proposes a quantum blockchain protocol leveraging high-dimensional time-entanglement and quantum measurements, offering enhanced security, noise resistance, and data verification without traditional cryptographic hashes, suitable for future quantum networks.
Contribution
It introduces a novel quantum blockchain protocol based on time-entanglement and high-dimensional quantum states, providing quantum-based security and verification mechanisms.
Findings
Uses high-dimensional Bell states for increased information capacity.
Provides distributed authentication and tamper detection via quantum correlations.
Compatible with emerging quantum communication platforms.
Abstract
Rapid advancements in quantum computing and machine learning threaten the long-term security of classical blockchain systems, whose protection mechanisms largely rely on computational difficulties. In this study, we propose a quantum blockchain protocol whose protection mechanism is directly derived from quantum mechanical principles. The protocol combines high-dimensional Bell states, time-entanglement, entanglement switching, and high-dimensional superdense coding. Encoding classical block information into time-delimited qudit states allows block identity and data verification to be implemented through the causal sequencing of quantum measurements instead of cryptographic hash functions. High-dimensional coding increases the information capacity per quantum carrier and improves noise resistance. Time-entanglement provides distributed authentication, non-repudiation, and tamper…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
