利用固态光子分子在室温下按需存储和检索光子

Ze-Yu Luo;Tong Zhang;Yi-Teng Ye;Yun-Fei Wang;Cheng-Cheng Yu;Zhi-Cong Luo;Yi-Jie Zhang;Mo-Chi Xu;Barry C. Sanders;Hui Wang;Chao-Yang Lu;Jian-Wei Pan
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引用次数: 0

摘要

确定性地实现片上光子存储和检索是集成光子学的一项基本挑战。此外,由于光子存储和检索对于实现真正可扩展的室温量子计算至关重要,因此这一要求日益迫切。然而,大多数集成在芯片上的现有量子存储器要么必须在低温下工作,要么与环境强烈耦合,从而大大降低了效率。在这里,我们提出了一种由三个耦合微腔组成的片上室温量子存储器,它通过波导去耦呈现出理想的暗态,从而实现了光子的按需存储和检索,同时具有高效率和高保真度。此外,我们还证明,单光子的时间长度可以增加或减少 103 倍,从而实现许多关键的量子应用。我们的防错方法凸显了固态光子分子用作片上量子存储器和光量子计算的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On-Demand Photon Storage and Retrieval with a Solid-State Photon Molecule at Room Temperature
Deterministically achieving on-chip photon storage and retrieval is a fundamental challenge for integrated photonics. Moreover, this requirement is increasingly urgent as photon storage and retrieval is crucial to realize truly scalable room-temperature quantum computing. However, most of existing quantum memories integrated on chips must either work at cryogenic temperature or else are strongly coupled with the environment, which hugely reduces the efficiency. Here, we propose an on-chip room-temperature quantum memory comprising three coupled microcavities, which presents an ideal dark state decoupled by a waveguide, thereby allowing on-demand photon storage and retrieval with high efficiency and high fidelity simultaneously. Furthermore, we demonstrate that the single-photon temporal duration can be increased or decreased by a factor of 10 3 , thereby enabling many crucial quantum applications. Our error-robust approach highlights the potential for a solid-state photonic molecule for use as on-chip quantum memory and for optical quantum computing.
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