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波导集成硅 T 中心。

Waveguide-integrated silicon T centres.

出版信息

Opt Express. 2023 Apr 24;31(9):15045-15057. doi: 10.1364/OE.482008.

Abstract

The performance of modular, networked quantum technologies will be strongly dependent upon the quality of their quantum light-matter interconnects. Solid-state colour centres, and in particular T centres in silicon, offer competitive technological and commercial advantages as the basis for quantum networking technologies and distributed quantum computing. These newly rediscovered silicon defects offer direct telecommunications-band photonic emission, long-lived electron and nuclear spin qubits, and proven native integration into industry-standard, CMOS-compatible, silicon-on-insulator (SOI) photonic chips at scale. Here we demonstrate further levels of integration by characterizing T centre spin ensembles in single-mode waveguides in SOI. In addition to measuring long spin T times, we report on the integrated centres' optical properties. We find that the narrow homogeneous linewidth of these waveguide-integrated emitters is already sufficiently low to predict the future success of remote spin-entangling protocols with only modest cavity Purcell enhancements. We show that further improvements may still be possible by measuring nearly lifetime-limited homogeneous linewidths in isotopically pure bulk crystals. In each case the measured linewidths are more than an order of magnitude lower than previously reported and further support the view that high-performance, large-scale distributed quantum technologies based upon T centres in silicon may be attainable in the near term.

摘要

模块化、网络化量子技术的性能将强烈依赖于其量子光物质互连的质量。固态色心,特别是硅中的 T 心,作为量子网络技术和分布式量子计算的基础,具有竞争的技术和商业优势。这些新发现的硅缺陷提供了直接的电信波段光子发射、长寿命电子和核自旋量子位,并且已经被证明可以在大规模的工业标准、CMOS 兼容的绝缘体上硅(SOI)光子芯片中进行本征集成。在这里,我们通过在 SOI 中单模波导中对 T 心自旋体进行表征,展示了进一步的集成水平。除了测量长自旋 T 时间外,我们还报告了集成中心的光学性质。我们发现,这些波导集成发射器的窄均匀线宽已经足够低,足以预测仅通过适度腔 Purcell 增强就可以实现远程自旋纠缠协议的未来成功。我们通过测量同位素纯体块晶体中接近寿命限制的均匀线宽表明,仍有可能进一步提高性能。在每种情况下,测量到的线宽都比以前报道的低一个数量级以上,这进一步支持了基于硅中 T 心的高性能、大规模分布式量子技术在近期内可能实现的观点。

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