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Dive into the research topics where Zu-En Su is active.

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Featured researches published by Zu-En Su.


Nature | 2015

Quantum teleportation of multiple degrees of freedom of a single photon

Xi-Lin Wang; Xin-Dong Cai; Zu-En Su; Ming-Cheng Chen; Dian Wu; Li Li; Nai-Le Liu; Chao-Yang Lu; Jian-Wei Pan

Quantum teleportation provides a ‘disembodied’ way to transfer quantum states from one object to another at a distant location, assisted by previously shared entangled states and a classical communication channel. As well as being of fundamental interest, teleportation has been recognized as an important element in long-distance quantum communication, distributed quantum networks and measurement-based quantum computation. There have been numerous demonstrations of teleportation in different physical systems such as photons, atoms, ions, electrons and superconducting circuits. All the previous experiments were limited to the teleportation of one degree of freedom only. However, a single quantum particle can naturally possess various degrees of freedom—internal and external—and with coherent coupling among them. A fundamental open challenge is to teleport multiple degrees of freedom simultaneously, which is necessary to describe a quantum particle fully and, therefore, to teleport it intact. Here we demonstrate quantum teleportation of the composite quantum states of a single photon encoded in both spin and orbital angular momentum. We use photon pairs entangled in both degrees of freedom (that is, hyper-entangled) as the quantum channel for teleportation, and develop a method to project and discriminate hyper-entangled Bell states by exploiting probabilistic quantum non-demolition measurement, which can be extended to more degrees of freedom. We verify the teleportation for both spin–orbit product states and hybrid entangled states, and achieve a teleportation fidelity ranging from 0.57 to 0.68, above the classical limit. Our work is a step towards the teleportation of more complex quantum systems, and demonstrates an increase in our technical control of scalable quantum technologies.


Physical Review Letters | 2013

Experimental quantum computing to solve systems of linear equations.

Xin-Dong Cai; Christian Weedbrook; Zu-En Su; Ming-Cheng Chen; Mile Gu; Min-Jie Zhu; Li Li; Nai-Le Liu; Chao-Yang Lu; Jian-Wei Pan

Solving linear systems of equations is ubiquitous in all areas of science and engineering. With rapidly growing data sets, such a task can be intractable for classical computers, as the best known classical algorithms require a time proportional to the number of variables N. A recently proposed quantum algorithm shows that quantum computers could solve linear systems in a time scale of order log(N), giving an exponential speedup over classical computers. Here we realize the simplest instance of this algorithm, solving 2×2 linear equations for various input vectors on a quantum computer. We use four quantum bits and four controlled logic gates to implement every subroutine required, demonstrating the working principle of this algorithm.


Physical Review Letters | 2017

Multiphoton Interference in Quantum Fourier Transform Circuits and Applications to Quantum Metrology

Zu-En Su; Yuan Li; Peter P. Rohde; He-Liang Huang; Xi-Lin Wang; Li Li; Nai-Le Liu; Jonathan P. Dowling; Chao-Yang Lu; Jian-Wei Pan

Quantum Fourier transforms (QFTs) have gained increased attention with the rise of quantum walks, boson sampling, and quantum metrology. Here, we present and demonstrate a general technique that simplifies the construction of QFT interferometers using both path and polarization modes. On that basis, we first observe the generalized Hong-Ou-Mandel effect with up to four photons. Furthermore, we directly exploit number-path entanglement generated in these QFT interferometers and demonstrate optical phase supersensitivities deterministically.


Physical Review A | 2017

Experimental test of the irreducible four-qubit Greenberger-Horne-Zeilinger paradox

Zu-En Su; Wei-Dong Tang; Dian Wu; Xin-Dong Cai; Tao Yang; Li Li; Nai-Le Liu; Chao-Yang Lu; Marek Żukowski; Jian-Wei Pan

Bells theorem shows a profound contradiction between local realism and quantum mechanics on the level of statistical predictions. It does not involve directly Einstein-Podolsky-Rosen (EPR) correlations. The paradox of Greenberger-Horne-Zeilinger (GHZ) disproves directly the concept of EPR elements of reality, based on the EPR correlations, in an all-versus-nothing way. A three-qubit experimental demonstration of the GHZ paradox was achieved nearly twenty years ago, and followed by demonstrations for more qubits. Still, the GHZ contradictions underlying the tests can be reduced to three-qubit one. We show an irreducible four-qubit GHZ paradox, and report its experimental demonstration. The reducibility loophole is closed. The bound of a three-setting per party Bell-GHZ inequality is violated by


Scientific Reports | 2016

Quantum uncertainty switches on or off the error-disturbance tradeoff

Yu-Xiang Zhang; Zu-En Su; Xuanmin Zhu; Shengjun Wu; Zeng-Bing Chen

7\sigma


Physical Review Letters | 2016

Experimental Ten-Photon Entanglement.

Xi-Lin Wang; Luo-Kan Chen; Wei Li; He-Liang Huang; C. Liu; Chao Chen; Yi-Han Luo; Zu-En Su; Dian Wu; Zheng-Da Li; He Lu; Yi Hu; Xiao Jiang; Cheng-Zhi Peng; Li Li; Nai-Le Liu; Yu-Ao Chen; Chao-Yang Lu; Jian-Wei Pan

. The fidelity of the GHZ state was around


Nature Photonics | 2017

High-efficiency multiphoton boson sampling

Hui Wang; Yu He; Yu-Huai Li; Zu-En Su; Bo Li; He-Liang Huang; Xing Ding; Ming-Cheng Chen; C. Liu; Jian Qin; J. Li; Yu-Ming He; Christian Schneider; M. Kamp; Cheng-Zhi Peng; Sven Höfling; Chao-Yang Lu; Jian-Wei Pan

81\%


Physical Review Letters | 2015

Entanglement-Based Machine Learning on a Quantum Computer

Xin-Dong Cai; Dian Wu; Zu-En Su; Ming-Cheng Chen; X. Wang; Li Li; Nai-Le Liu; Chao-Yang Lu; Jian-Wei Pan

, and an entanglement witness reveals a violation of the separability threshold by


Physical Review Letters | 2017

Experimental Blind Quantum Computing for a Classical Client

He-Liang Huang; Qi Zhao; Xiongfeng Ma; C. Liu; Zu-En Su; Xi-Lin Wang; Li Li; Nai-Le Liu; Barry C. Sanders; Chao-Yang Lu; Jian-Wei Pan

19\sigma


Physical Review Letters | 2016

Efficient Measurement of Multiparticle Entanglement with Embedding Quantum Simulator.

Ming-Cheng Chen; Dian Wu; Zu-En Su; Xin-Dong Cai; Xi-Lin Wang; Tao Yang; Li Li; Nai-Le Liu; Chao-Yang Lu; Jian-Wei Pan

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Chao-Yang Lu

University of Science and Technology of China

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Jian-Wei Pan

University of Science and Technology of China

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Li Li

University of Science and Technology of China

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Nai-Le Liu

University of Science and Technology of China

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Ming-Cheng Chen

University of Science and Technology of China

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Xi-Lin Wang

University of Science and Technology of China

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Dian Wu

University of Science and Technology of China

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He-Liang Huang

University of Science and Technology of China

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Xin-Dong Cai

University of Science and Technology of China

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C. Liu

University of Science and Technology of China

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