Quantum secure direct communication based on quantum error correction code

C Chao-Wei Ding (College of Science, Nanjing University of Posts and Telecommunications 1 , Nanjing, Jiangsu 210023,) W Wen-Yang Wang (College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications 2 , Nanjing, Jiangsu 210023,) W Wen-Da Zhang (College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications 2 , Nanjing, Jiangsu 210023,) L Lan Zhou (Engineering Research Center of Organosilicon Compounds and Materials (Ministry of Education), Hubei Key Lab on Organic and Polymeric OptoElectronic Materials, College of Chemistry and Molecular Sciences, The Institute for Advanced Studies, TaiKang Center for Life and Medical Sciences, and State Key Laboratory of Metabolism and Regulation in Complex Organisms) Y Yu-Bo Sheng (College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications 2 , Nanjing, Jiangsu 210023,)

Abstract

Quantum secure direct communication (QSDC) enables the message sender to directly transmit messages to the message receiver through quantum channel without keys. Environmental noise is the main obstacle for QSDC's practicality. For enhancing QSDC's noise robustness, we introduce the quantum error correction (QEC) code into QSDC and propose the QSDC protocol based on the redundancy code. This QSDC protocol correlates atomic state with the electron–photon entangled pairs and transmits photons in quantum channels for two rounds. The parties can construct the remote atomic logical entanglement channel and decode messages with the heralded photonic Bell state measurement (BSM) and single electron measurement. This QSDC protocol is unconditionally secure in theory and has some advantages. First, benefiting from the heralded photonic BSM, it can eliminate the influence from photon transmission loss and has the potential to realize long-distance secure message transmission. Second, taking use of the error correction function of the repetition code, the error rate caused by the decoherence during the second round of photon transmission can be reduced, which can reduce the message error and increase the secret message capacity. Third, the whole protocol is feasible under current experimental condition. Our QSDC protocol can be extended to use other stronger QEC code. It provides a promising method to promote QSDC's practicality in the future.

Article Details

Volume / Issue Vol. 126, Issue 2
Published January 13, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (5)

C

Chao-Wei Ding

College of Science, Nanjing University of Posts and Telecommunications 1 , Nanjing, Jiangsu 210023,

W

Wen-Yang Wang

College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications 2 , Nanjing, Jiangsu 210023,

W

Wen-Da Zhang

College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications 2 , Nanjing, Jiangsu 210023,

L

Lan Zhou

Engineering Research Center of Organosilicon Compounds and Materials (Ministry of Education), Hubei Key Lab on Organic and Polymeric OptoElectronic Materials, College of Chemistry and Molecular Sciences, The Institute for Advanced Studies, TaiKang Center for Life and Medical Sciences, and State Key Laboratory of Metabolism and Regulation in Complex Organisms

Y

Yu-Bo Sheng

College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications 2 , Nanjing, Jiangsu 210023,