Hao Shuhong, Shi Haowei, Li Wei, Shapiro Jeffrey H, Zhuang Quntao, Zhang Zheshen
Department of Materials Science and Engineering, University of Arizona, Tucson, Arizona 85721, USA.
James C. Wyant College of Optical Sciences, University of Arizona, Tucson, Arizona 85721, USA.
Phys Rev Lett. 2021 Jun 25;126(25):250501. doi: 10.1103/PhysRevLett.126.250501.
Entanglement underpins a variety of quantum-enhanced communication, sensing, and computing capabilities. Entanglement-assisted communication (EACOMM) leverages entanglement preshared by communicating parties to boost the rate of classical information transmission. Pioneering theory works showed that EACOMM can enable a communication rate well beyond the ultimate classical capacity of optical communications, but an experimental demonstration of any EACOMM advantage remains elusive. In this Letter we report the implementation of EACOMM surpassing the classical capacity over lossy and noisy bosonic channels. We construct a high-efficiency entanglement source and a phase-conjugate quantum receiver to reap the benefit of preshared entanglement, despite entanglement being broken by channel loss and noise. We show that EACOMM beats the Holevo-Schumacher-Westmoreland capacity of classical communication by up to 16.3%, when both protocols are subject to the same power constraint at the transmitter. As a practical performance benchmark, we implement a classical communication protocol with the identical characteristics for the encoded signal, showing that EACOMM can reduce the bit-error rate by up to 69% over the same bosonic channel. Our work opens a route to provable quantum advantages in a wide range of quantum information processing tasks.
量子纠缠是多种量子增强通信、传感和计算能力的基础。纠缠辅助通信(EACOMM)利用通信双方预先共享的纠缠来提高经典信息传输速率。开创性的理论研究表明,EACOMM能够实现远超光通信经典极限容量的通信速率,但任何EACOMM优势的实验验证仍未实现。在本论文中,我们报告了在有损且有噪声的玻色子信道上实现超越经典容量的EACOMM。我们构建了一个高效的纠缠源和一个相位共轭量子接收器,尽管纠缠会因信道损耗和噪声而被破坏,但仍能利用预先共享的纠缠。我们表明,当两种协议在发射端受到相同功率约束时,EACOMM比经典通信的霍列沃 - 舒马赫 - 韦斯特摩兰容量高出多达16.3%。作为一个实际性能基准,我们实现了一个对编码信号具有相同特性的经典通信协议,结果表明在相同的玻色子信道上,EACOMM可将误码率降低多达69%。我们的工作为在广泛的量子信息处理任务中实现可证明的量子优势开辟了一条途径。