光子学
物理
光子
光电子学
光子集成电路
量子点
单光子源
量子技术
量子计算机
量子成像
光子晶体
量子
波导管
量子网络
光学
量子力学
开放量子系统
作者
Mario Schwartz,Ekkehart Schmidt,Ulrich Rengstl,Florian Hornung,Stefan Hepp,Simone Luca Portalupi,Konstantin llin,Michael Jetter,Michael Alan Siegel,Peter Michler
出处
期刊:Nano Letters
[American Chemical Society]
日期:2018-10-17
卷期号:18 (11): 6892-6897
被引量:54
标识
DOI:10.1021/acs.nanolett.8b02794
摘要
Photonic quantum technologies such as quantum cryptography, photonic quantum metrology, photonic quantum simulators and computers will largely benefit from highly scalable and small footprint quantum photonic circuits. To perform fully on-chip quantum photonic operations, three basic building blocks are required: single-photon sources, photonic circuits and single-photon detectors. Highly integrated quantum photonic chips on silicon and related platforms have been demonstrated incorporating only one or two of these basic building blocks. Previous implementations of all three components were mainly limited by laser stray light, making temporal filtering necessary or required complex manipulation to transfer all components onto one chip. So far, a monolithic, simultaneous implementation of all elements demonstrating single-photon operation remains elusive. Here, we present a fully-integrated Hanbury-Brown and Twiss setup on a micron-sized footprint, consisting of a GaAs waveguide embedding quantum dots as single-photon sources, a waveguide beamsplitter and two superconducting nanowire single-photon detectors. This enables a second-order correlation measurement at the single-photon level under both continuous-wave and pulsed resonant excitation.
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