Department of Physics, Simon Fraser University, Burnaby, British Columbia, Canada.
Photonic Inc., Coquitlam, British Columbia, Canada.
Nature. 2022 Jul;607(7918):266-270. doi: 10.1038/s41586-022-04821-y. Epub 2022 Jul 13.
The global quantum internet will require long-lived, telecommunications-band photon-matter interfaces manufactured at scale. Preliminary quantum networks based on photon-matter interfaces that meet a subset of these demands are encouraging efforts to identify new high-performance alternatives. Silicon is an ideal host for commercial-scale solid-state quantum technologies. It is already an advanced platform within the global integrated photonics and microelectronics industries, as well as host to record-setting long-lived spin qubits. Despite the overwhelming potential of the silicon quantum platform, the optical detection of individually addressable photon-spin interfaces in silicon has remained elusive. In this work, we integrate individually addressable 'T centre' photon-spin qubits in silicon photonic structures and characterize their spin-dependent telecommunications-band optical transitions. These results unlock immediate opportunities to construct silicon-integrated, telecommunications-band quantum information networks.
全球量子互联网将需要大规模制造长寿命、电信波段的光子-物质接口。基于满足这些需求子集的光子-物质接口的初步量子网络正在鼓励人们努力寻找新的高性能替代品。硅是商业规模固态量子技术的理想宿主。它已经是全球集成光子学和微电子学行业中的先进平台,也是创纪录长寿命自旋量子位的宿主。尽管硅量子平台具有压倒性的潜力,但在硅中实现对可单独寻址的光子-自旋接口的光学检测仍然难以实现。在这项工作中,我们在硅光子结构中集成了可单独寻址的“T 中心”光子-自旋量子位,并对其自旋相关的电信波段光学跃迁进行了表征。这些结果为构建硅集成、电信波段量子信息网络提供了即时机会。