A generalized multipath delayed-choice experiment on a large-scale quantum nanophotonic chip

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作者
Xiaojiong Chen
Yaohao Deng
Shuheng Liu
Tanumoy Pramanik
Jun Mao
Jueming Bao
Chonghao Zhai
Tianxiang Dai
Huihong Yuan
Jiajie Guo
Shao-Ming Fei
Marcus Huber
Bo Tang
Yan Yang
Zhihua Li
Qiongyi He
Qihuang Gong
Jianwei Wang
机构
[1] State Key Laboratory for Mesoscopic Physics,
[2] School of Physics,undefined
[3] Peking University,undefined
[4] Beijing Academy of Quantum Information Sciences,undefined
[5] School of Mathematical Sciences,undefined
[6] Capital Normal University,undefined
[7] Institute for Quantum Optics and Quantum Information – IQOQI Vienna,undefined
[8] Austrian Academy of Sciences,undefined
[9] Vienna Center for Quantum Science and Technology,undefined
[10] Atominstitut,undefined
[11] TU Wien,undefined
[12] Institute of Microelectronics,undefined
[13] Chinese Academy of Sciences,undefined
[14] Frontiers Science Center for Nano-optoelectronics & Collaborative Innovation Center of Quantum Matter,undefined
[15] Peking University,undefined
[16] Collaborative Innovation Center of Extreme Optics,undefined
[17] Shanxi University,undefined
[18] Peking University Yangtze Delta Institute of Optoelectronics,undefined
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摘要
Bohr’s complementarity is one central tenet of quantum physics. The paradoxical wave-particle duality of quantum matters and photons has been tested in Young’s double-slit (double-path) interferometers. The object exclusively exhibits wave and particle nature, depending measurement apparatus that can be delayed chosen to rule out too-naive interpretations of quantum complementarity. All experiments to date have been implemented in the double-path framework, while it is of fundamental interest to study complementarity in multipath interferometric systems. Here, we demonstrate generalized multipath wave-particle duality in a quantum delayed-choice experiment, implemented by large-scale silicon-integrated multipath interferometers. Single-photon displays sophisticated transitions between wave and particle characters, determined by the choice of quantum-controlled generalized Hadamard operations. We characterise particle-nature by multimode which-path information and wave-nature by multipath coherence of interference, and demonstrate the generalisation of Bohr’s multipath duality relation. Our work provides deep insights into multidimensional quantum physics and benchmarks controllability of integrated photonic quantum technology.
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