Ding Chen, Lobo Edwin Peter, Alimuddin Mir, Xu Xiao-Yue, Zhang Shuo, Banik Manik, Bao Wan-Su, Huang He-Liang
Henan Key Laboratory of Quantum Information and Cryptography, Zhengzhou, Henan 450000, China.
Laboratoire d'Information Quantique, <a href="https://ror.org/01r9htc13">Université libre de Bruxelles (ULB)</a>, Avenue F. D. Roosevelt 50, 1050 Bruxelles, Belgium.
Phys Rev Lett. 2024 Nov 15;133(20):200201. doi: 10.1103/PhysRevLett.133.200201.
We implement an experiment on a photonic quantum processor establishing efficacy of the elementary quantum system in classical information storage. The advantage is established by considering a class of simple bipartite games played with the communication resource qubit and classical bit (c bit), respectively. Conventional wisdom, supported by the no-go theorems of Holevo and Frenkel-Weiner, suggests that such a quantum advantage is unattainable when the sender and receiver share randomness or classical correlations. However, our results reveal a quantum advantage in a scenario devoid of any shared randomness. Our experiment involves the development of a variational triangular polarimeter, enabling the realization of positive operator value measurements crucial for establishing the targeted quantum advantage. Beyond showcasing a robust communication advantage with a single qubit, our work paves the way for immediate applications in near-term quantum technologies. It provides a semi-device-independent certification scheme for quantum encoding-decoding systems and offers an efficient method for information loading and transmission in quantum networks.
我们在一个光子量子处理器上进行了一项实验,证实了基本量子系统在经典信息存储方面的有效性。通过考虑分别使用通信资源量子比特和经典比特(c比特)进行的一类简单二分博弈,确立了这种优势。由霍列沃定理和弗伦克尔 - 韦纳定理支持的传统观点表明,当发送方和接收方共享随机性或经典相关性时,这种量子优势是无法实现的。然而,我们的结果揭示了在没有任何共享随机性的情况下的量子优势。我们的实验涉及开发一种变分三角偏振计,能够实现对于确立目标量子优势至关重要的正定算符值测量。除了展示单个量子比特强大的通信优势外,我们的工作为近期量子技术的直接应用铺平了道路。它为量子编码 - 解码系统提供了一种半设备无关的认证方案,并为量子网络中的信息加载和传输提供了一种有效方法。