The promise of tremendous computational power, coupled with the development of robust error-correcting schemes(1), has fuelled extensive efforts(2) to build a quantum computer. The requirements for realizing such a device are confounding: scalable quantum bits (two-level quantum systems, or qubits) that can be well isolated from the environment, but also initialized, measured and made to undergo controllable interactions to implement a universal set of quantum logic gates(3). The usual set consists of single qubit rotations and a controlled-NOT (CNOT) gate, which flips the state of a target qubit conditional on the control qubit being in the state 1. Here we report an unambiguous experimental demonstration and comprehensive characterization of quantum CNOT operation in an optical system. We produce all four entangled Bell states as a function of only the input qubits' logical values, for a single operating condition of the gate. The gate is probabilistic (the qubits are destroyed upon failure), but with the addition of linear optical quantum non-demolition measurements, it is equivalent to the CNOT gate required for scalable all-optical quantum computation(4).
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Natl Univ Def Technol, State Key Lab High Performance Comp, Changsha, Hunan, Peoples R ChinaNatl Univ Def Technol, State Key Lab High Performance Comp, Changsha, Hunan, Peoples R China
He, Hongjuan
Wu, Junjie
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Natl Univ Def Technol, State Key Lab High Performance Comp, Changsha, Hunan, Peoples R ChinaNatl Univ Def Technol, State Key Lab High Performance Comp, Changsha, Hunan, Peoples R China
Wu, Junjie
Zhu, Xuan
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Natl Univ Def Technol, State Key Lab High Performance Comp, Changsha, Hunan, Peoples R ChinaNatl Univ Def Technol, State Key Lab High Performance Comp, Changsha, Hunan, Peoples R China
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Laboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal UniversityLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Yijia Huang
Tianxiao Xiao
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Physik-Department, Lehrstuhl fur Funktionelle Materialien, Technische Universitat MunchenLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Tianxiao Xiao
Shuai Chen
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Tianjin Huahuixin Technology Group Co., LtdLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Shuai Chen
Zhengwei Xie
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Laboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal UniversityLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Zhengwei Xie
Jie Zheng
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Laboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal UniversityLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Jie Zheng
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Jianqi Zhu
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Yarong Su
Weidong Chen
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Laboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal UniversityLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Weidong Chen
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Ke Liu
Mingjun Tang
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Laboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal UniversityLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Mingjun Tang
Peter Müller-Buschbaum
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Physik-Department, Lehrstuhl fur Funktionelle Materialien, Technische Universitat Munchen
Heinz Maier-Leibnitz Zentrum (MLZ), Technische Universit?t MünchenLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University
Peter Müller-Buschbaum
Ling Li
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Laboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal UniversityLaboratory of Micro-Nano Optics, College of Physics and Electronic Engineering, Sichuan Normal University