Yang Jiawei, Chen Yan, Rao Zhixuan, Zheng Ziyang, Song Changkun, Chen Yujie, Xiong Kaili, Chen Pingxing, Zhang Chaofan, Wu Wei, Yu Ying, Yu Siyuan
State Key Laboratory of Optoelectronic Materials and Technologies, School of Electronics and Information Technology, Sun Yat-Sen University, Guangzhou, 510006, China.
Institute for Quantum Science and Technology, College of Science, National University of Defense Technology, Changsha, 410073, China.
Light Sci Appl. 2024 Jan 30;13(1):33. doi: 10.1038/s41377-024-01384-7.
Cavity-enhanced single quantum dots (QDs) are the main approach towards ultra-high-performance solid-state quantum light sources for scalable photonic quantum technologies. Nevertheless, harnessing the Purcell effect requires precise spectral and spatial alignment of the QDs' emission with the cavity mode, which is challenging for most cavities. Here we have successfully integrated miniaturized Fabry-Perot microcavities with a piezoelectric actuator, and demonstrated a bright single-photon source derived from a deterministically coupled QD within this microcavity. Leveraging the cavity-membrane structures, we have achieved large spectral tunability via strain tuning. On resonance, a high Purcell factor of ~9 is attained. The source delivers single photons with simultaneous high extraction efficiency of 0.58, high purity of 0.956(2) and high indistinguishability of 0.922(4). Together with its compact footprint, our scheme facilitates the scalable integration of indistinguishable quantum light sources on-chip, therefore removing a major barrier to the development of solid-state quantum information platforms based on QDs.
腔增强单量子点(QDs)是实现用于可扩展光子量子技术的超高性能固态量子光源的主要途径。然而,利用珀塞尔效应需要量子点发射与腔模在光谱和空间上精确对准,这对大多数腔来说具有挑战性。在这里,我们成功地将小型法布里 - 珀罗微腔与压电致动器集成在一起,并展示了一种由该微腔内确定性耦合的量子点产生的明亮单光子源。利用腔 - 膜结构,我们通过应变调谐实现了大的光谱可调性。在共振时,可获得约9的高珀塞尔因子。该光源产生的单光子同时具有0.58的高提取效率、0.956(2)的高纯度和0.922(4)的高不可区分性。连同其紧凑的尺寸,我们的方案有助于在芯片上可扩展地集成不可区分的量子光源,从而消除了基于量子点的固态量子信息平台发展的一个主要障碍。