Experimental simulation of quantum temporal steering beyond rotating-wave approximation
Shao-Jie Xiong, Yu Zhang, Zhe Sun, Li Yu, Jinshuang Jin, Xiao-Qiang, Xu, Jin-Ming Liu, Kefei Chen, Chui-Ping Yang

TL;DR
This paper experimentally simulates quantum channels without common approximations, revealing the significant impact of counter-rotating terms on quantum temporal steering and implications for quantum cryptography security.
Contribution
First experimental simulation of quantum channels without Born, Markov, or rotating-wave approximations using linear optical devices, providing more accurate insights into quantum dynamics.
Findings
Counter-rotating terms significantly affect TS dynamics.
RWA-based channels overestimate security durations.
Non-RWA channels reveal potential security risks in quantum key distribution.
Abstract
Characterizing the dynamics of open systems usually starts with a perturbative theory and involves various approximations, such as the Born, Markov and rotating-wave approximation (RWA). However, the approximation approaches could introduce more or less incompleteness in describing the bath behaviors. Here, we consider a quantum channel, which is modeled by a qubit (a two-level system) interacting with a bosonic bath. Unlike the traditional works, we experimentally simulate the system-bath interaction without applying the Born, Markov, and rotating-wave approximations. To our knowledge, this is the first experimental simulation of the quantum channels without any approximations mentioned above, by using linear optical devices. The results are quite useful and interesting, which not only reveal the effect of the counter-rotating terms but also present a more accurate picture of the…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
