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由具有电注入的异质集成微柱激光器泵浦的明亮半导体单光子源。

Bright semiconductor single-photon sources pumped by heterogeneously integrated micropillar lasers with electrical injections.

作者信息

Li Xueshi, Liu Shunfa, Wei Yuming, Ma Jiantao, Song Changkun, Yu Ying, Su Rongbin, Geng Wei, Ni Haiqiao, Liu Hanqing, Su Xiangbin, Niu Zhichuan, Chen You-Ling, Liu Jin

机构信息

State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics, School of Electronics and Information Technology, Sun Yat-sen University, 510275, Guangzhou, China.

Hisilicon Research, Huawei Technologies Co., Ltd, 518129, Shenzhen, China.

出版信息

Light Sci Appl. 2023 Mar 6;12(1):65. doi: 10.1038/s41377-023-01110-9.

Abstract

The emerging hybrid integrated quantum photonics combines the advantages of different functional components into a single chip to meet the stringent requirements for quantum information processing. Despite the tremendous progress in hybrid integrations of III-V quantum emitters with silicon-based photonic circuits and superconducting single-photon detectors, on-chip optical excitations of quantum emitters via miniaturized lasers towards single-photon sources (SPSs) with low power consumptions, small device footprints, and excellent coherence properties is highly desirable yet illusive. In this work, we present realizations of bright semiconductor SPSs heterogeneously integrated with on-chip electrically-injected microlasers. Different from previous one-by-one transfer printing technique implemented in hybrid quantum dot (QD) photonic devices, multiple deterministically coupled QD-circular Bragg Grating (CBG) SPSs were integrated with electrically-injected micropillar lasers at one time via a potentially scalable transfer printing process assisted by the wide-field photoluminescence (PL) imaging technique. Optically pumped by electrically-injected microlasers, pure single photons are generated with a high-brightness of a count rate of 3.8 M/s and an extraction efficiency of 25.44%. Such a high-brightness is due to the enhancement by the cavity mode of the CBG, which is confirmed by a Purcell factor of 2.5. Our work provides a powerful tool for advancing hybrid integrated quantum photonics in general and boosts the developments for realizing highly-compact, energy-efficient and coherent SPSs in particular.

摘要

新兴的混合集成量子光子学将不同功能组件的优势整合到单个芯片中,以满足量子信息处理的严格要求。尽管在将III-V族量子发射器与硅基光子电路和超导单光子探测器进行混合集成方面取得了巨大进展,但通过小型化激光器对量子发射器进行片上光学激发以实现具有低功耗、小器件尺寸和优异相干特性的单光子源(SPS),仍然是非常理想但难以实现的。在这项工作中,我们展示了与片上电注入微激光器异质集成的明亮半导体SPS的实现。与之前在混合量子点(QD)光子器件中采用的逐个转移印刷技术不同,多个确定性耦合的QD-圆形布拉格光栅(CBG)SPS通过宽场光致发光(PL)成像技术辅助的潜在可扩展转移印刷工艺,一次性与电注入微柱激光器集成。由电注入微激光器进行光泵浦,产生了纯度高的单光子,计数率高达3.8 M/s,提取效率为25.44%。如此高的亮度归因于CBG腔模的增强,这通过2.5的珀塞尔因子得到证实。我们的工作为推动一般的混合集成量子光子学提供了一个强大的工具,尤其促进了实现高度紧凑、节能且相干的SPS的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/311f/9986240/858e08c4ee8d/41377_2023_1110_Fig1_HTML.jpg

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