Yan Junyong, Liu Shunfa, Lin Xing, Ye Yongzheng, Yu Jiawang, Wang Lingfang, Yu Ying, Zhao Yanhui, Meng Yun, Hu Xiaolong, Wang Da-Wei, Jin Chaoyuan, Liu Feng
Interdisciplinary Center for Quantum Information, State Key Laboratory of Modern Optical Instrumentation, College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou 310027, China.
State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics, Sun Yat-sen University, Guangzhou 510275, China.
Nano Lett. 2022 Feb 23;22(4):1483-1490. doi: 10.1021/acs.nanolett.1c03543. Epub 2022 Feb 11.
Single-photon sources play a key role in photonic quantum technologies. Semiconductor quantum dots can emit indistinguishable single photons under resonant excitation. However, the resonance fluorescence technique typically requires cross-polarization filtering, which causes a loss of the unpolarized quantum dot emission by 50%. To solve this problem, we demonstrate a method for generating indistinguishable single photons with optically controlled polarization by two laser pulses off-resonant with neutral exciton states. This scheme is realized by exciting the quantum dot to the biexciton state and subsequently driving the quantum dot to an exciton eigenstate. By combining with a magnetic field, we demonstrated the generation of photons with optically controlled polarization (the degree of polarization is 101(2)%), laser-neutral exciton detuning up to 0.81 meV, high single-photon purity (99.6(1)%), and indistinguishability (85(4)%). Laser pulses can be blocked using polarization and spectral filtering. Our work makes an important step toward indistinguishable single-photon sources with near-unity collection efficiency.
单光子源在光子量子技术中起着关键作用。半导体量子点在共振激发下可以发射不可区分的单光子。然而,共振荧光技术通常需要交叉偏振滤波,这会导致非偏振量子点发射损失50%。为了解决这个问题,我们展示了一种通过与中性激子态非共振的两个激光脉冲产生具有光学控制偏振的不可区分单光子的方法。该方案通过将量子点激发到双激子态,随后将量子点驱动到激子本征态来实现。通过与磁场相结合,我们展示了具有光学控制偏振(偏振度为101(2)%)、激光-中性激子失谐高达0.81 meV、高单光子纯度(99.6(1)%)和不可区分性(85(4)%)的光子的产生。激光脉冲可以使用偏振和光谱滤波进行阻挡。我们的工作朝着具有接近100%收集效率的不可区分单光子源迈出了重要一步。