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Dive into the research topics where Yu-Ao Chen is active.

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Featured researches published by Yu-Ao Chen.


Nature | 2004

Experimental demonstration of five-photon entanglement and open-destination teleportation.

Zhi Zhao; Yu-Ao Chen; An-Ning Zhang; Tao Yang; Hans J. Briegel; Jian-Wei Pan

Quantum-mechanical entanglement of three or four particles has been achieved experimentally, and has been used to demonstrate the extreme contradiction between quantum mechanics and local realism. However, the realization of five-particle entanglement remains an experimental challenge. The ability to manipulate the entanglement of five or more particles is required for universal quantum error correction. Another key process in distributed quantum information processing, similar to encoding and decoding, is a teleportation protocol that we term ‘open-destination’ teleportation. An unknown quantum state of a single particle is teleported onto a superposition of N particles; at a later stage, this teleported state can be read out (for further applications) at any of the N particles, by a projection measurement on the remaining particles. Here we report a proof-of-principle demonstration of five-photon entanglement and open-destination teleportation (for N = 3). In the experiment, we use two entangled photon pairs to generate a four-photon entangled state, which is then combined with a single-photon state. Our experimental methods can be used for investigations of measurement-based quantum computation and multi-party quantum communication.


Nature Physics | 2012

Probing the relaxation towards equilibrium in an isolated strongly correlated one-dimensional Bose gas

Stefan Trotzky; Yu-Ao Chen; Andreas Flesch; Ian P. McCulloch; Ulrich Schollwöck; Jens Eisert; Immanuel Bloch

How quantum many-body systems relax from an initial non-equilibrium state is one of the outstanding problems in quantum statistical physics. A study combining an experimental approach for monitoring the dynamics of strongly correlated cold atoms with theoretical analysis now provides quantitative insights into the problem.


Nature Photonics | 2012

Observation of eight-photon entanglement

Xing-Can Yao; Tian-Xiong Wang; Ping Xu; He Lu; Ge-Sheng Pan; Xiao-Hui Bao; Cheng-Zhi Peng; Chao-Yang Lu; Yu-Ao Chen; Jian-Wei Pan

Researchers demonstrate the creation of an eight-photon Schrodinger-cat state with genuine multipartite entanglement by developing noise-reduction multiphoton interferometer and post-selection detection. The ability to control eight individual photons will enable new multiphoton entanglement experiments in previously inaccessible parameter regimes.


Nature | 2008

Experimental demonstration of a BDCZ quantum repeater node

Zhen-Sheng Yuan; Yu-Ao Chen; Bo Zhao; Shuai Chen; Joerg Schmiedmayer; Jian-Wei Pan

Quantum communication is a method that offers efficient and secure ways for the exchange of information in a network. Large-scale quantum communication (of the order of 100 km) has been achieved; however, serious problems occur beyond this distance scale, mainly due to inevitable photon loss in the transmission channel. Quantum communication eventually fails when the probability of a dark count in the photon detectors becomes comparable to the probability that a photon is correctly detected. To overcome this problem, Briegel, Dür, Cirac and Zoller (BDCZ) introduced the concept of quantum repeaters, combining entanglement swapping and quantum memory to efficiently extend the achievable distances. Although entanglement swapping has been experimentally demonstrated, the implementation of BDCZ quantum repeaters has proved challenging owing to the difficulty of integrating a quantum memory. Here we realize entanglement swapping with storage and retrieval of light, a building block of the BDCZ quantum repeater. We follow a scheme that incorporates the strategy of BDCZ with atomic quantum memories. Two atomic ensembles, each originally entangled with a single emitted photon, are projected into an entangled state by performing a joint Bell state measurement on the two single photons after they have passed through a 300-m fibre-based communication channel. The entanglement is stored in the atomic ensembles and later verified by converting the atomic excitations into photons. Our method is intrinsically phase insensitive and establishes the essential element needed to realize quantum repeaters with stationary atomic qubits as quantum memories and flying photonic qubits as quantum messengers.


Nature | 2012

Quantum teleportation and entanglement distribution over 100-kilometre free-space channels

Juan Yin; Ji-Gang Ren; He Lu; Yuan Cao; Hai-Lin Yong; Yu-Ping Wu; C. Liu; Sheng-Kai Liao; Fei Zhou; Yan Jiang; Xin-Dong Cai; Ping Xu; Ge-Sheng Pan; Jianjun Jia; Yong-Mei Huang; Hao Yin; Jianyu Wang; Yu-Ao Chen; Cheng-Zhi Peng; Jian-Wei Pan

Transferring an unknown quantum state over arbitrary distances is essential for large-scale quantum communication and distributed quantum networks. It can be achieved with the help of long-distance quantum teleportation and entanglement distribution. The latter is also important for fundamental tests of the laws of quantum mechanics. Although quantum teleportation and entanglement distribution over moderate distances have been realized using optical fibre links, the huge photon loss and decoherence in fibres necessitate the use of quantum repeaters for larger distances. However, the practical realization of quantum repeaters remains experimentally challenging. Free-space channels, first used for quantum key distribution, offer a more promising approach because photon loss and decoherence are almost negligible in the atmosphere. Furthermore, by using satellites, ultra-long-distance quantum communication and tests of quantum foundations could be achieved on a global scale. Previous experiments have achieved free-space distribution of entangled photon pairs over distances of 600 metres (ref. 14) and 13 kilometres (ref. 15), and transfer of triggered single photons over a 144-kilometre one-link free-space channel. Most recently, following a modified scheme, free-space quantum teleportation over 16 kilometres was demonstrated with a single pair of entangled photons. Here we report quantum teleportation of independent qubits over a 97-kilometre one-link free-space channel with multi-photon entanglement. An average fidelity of 80.4 ± 0.9 per cent is achieved for six distinct states. Furthermore, we demonstrate entanglement distribution over a two-link channel, in which the entangled photons are separated by 101.8 kilometres. Violation of the Clauser–Horne–Shimony–Holt inequality is observed without the locality loophole. Besides being of fundamental interest, our results represent an important step towards a global quantum network. Moreover, the high-frequency and high-accuracy acquiring, pointing and tracking technique developed in our experiment can be directly used for future satellite-based quantum communication and large-scale tests of quantum foundations.


Nature Physics | 2010

Experimental demonstration of a hyper-entangled ten-qubit Schr|[ouml]|dinger cat state

Wei-Bo Gao; Chao-Yang Lu; Xing-Can Yao; Ping Xu; Otfried Gühne; Alexander Goebel; Yu-Ao Chen; Cheng-Zhi Peng; Zeng-Bing Chen; Jian-Wei Pan

Creating entangled photon states becomes technologically ever more difficult as the number of particles increases, and the current record stands at six entangled photons. However, using both their polarization and momentum degrees of freedom, up to ten-qubit states can be encoded in ‘only’ five photons, as has now been demonstrated.


Physical Review Letters | 2003

Experimental Realization of Entanglement Concentration and a Quantum Repeater

Zhi Zhao; Tao Yang; Yu-Ao Chen; An-Ning Zhang; Jian-Wei Pan

We report an experimental realization of entanglement concentration using two polarization-entangled photon pairs produced by pulsed parametric down-conversion. In the meantime, our setup also provides a proof-in-principle demonstration of a quantum repeater. The quality of our procedure is verified by observing a violation of Bells inequality by more than 5 standard deviations. The high experimental accuracy achieved in the experiment implies that the requirement of tolerable error rate in multistage realization of quantum repeaters can be fulfilled, hence providing a useful toolbox for quantum communication over large distances.


Nature Photonics | 2010

Experimental demonstration of a heralded entanglement source

Claudia Wagenknecht; Che Ming Li; Andreas Reingruber; Xiao-Hui Bao; Alexander Goebel; Yu-Ao Chen; Qiang Zhang; Kai Chen; Jian-Wei Pan

An efficient source of entangled photons generated in an event-ready manner by conditioned detection of auxiliary photons is reported. A fidelity better than 87% and a state preparation efficiency of 45% are obtained. The scheme could offer promising applications in essential photonics-based quantum information tasks, and represents a particularly important development in the realization of optical quantum computing.


Science | 2017

Satellite-based entanglement distribution over 1200 kilometers

Juan Yin; Yuan Cao; Yu-Huai Li; Sheng-Kai Liao; Liang Zhang; Ji-Gang Ren; Wen-Qi Cai; Weiyue Liu; Bo Li; Hui Dai; Guang-Bing Li; Qi-Ming Lu; Yun-Hong Gong; Yu Xu; Shuang-Lin Li; Feng-Zhi Li; Ya-Yun Yin; Ziqing Jiang; Ming Li; Jianjun Jia; Ge Ren; Dong He; Yi-Lin Zhou; Xiao-Xiang Zhang; Na Wang; Xiang Chang; Zhen-Cai Zhu; Nai-Le Liu; Yu-Ao Chen; Chao-Yang Lu

Entangled photons are distributed over vast distances using a satellite-to-ground link. Space calling Earth, on the quantum line A successful quantum communication network will rely on the ability to distribute entangled photons over large distances between receiver stations. So far, free-space demonstrations have been limited to line-of-sight links across cities or between mountaintops. Scattering and coherence decay have limited the link separations to around 100 km. Yin et al. used the Micius satellite, which was launched last year and is equipped with a specialized quantum optical payload. They successfully demonstrated the satellite-based entanglement distribution to receiver stations separated by more than 1200 km. The results illustrate the possibility of a future global quantum communication network. Science, this issue p. 1140 Long-distance entanglement distribution is essential for both foundational tests of quantum physics and scalable quantum networks. Owing to channel loss, however, the previously achieved distance was limited to ~100 kilometers. Here we demonstrate satellite-based distribution of entangled photon pairs to two locations separated by 1203 kilometers on Earth, through two satellite-to-ground downlinks with a summed length varying from 1600 to 2400 kilometers. We observed a survival of two-photon entanglement and a violation of Bell inequality by 2.37 ± 0.09 under strict Einstein locality conditions. The obtained effective link efficiency is orders of magnitude higher than that of the direct bidirectional transmission of the two photons through telecommunication fibers.


Nature Photonics | 2013

Direct and full-scale experimental verifications towards ground-satellite quantum key distribution

Jianyu Wang; Bin Yang; Sheng-Kai Liao; Liang Zhang; Qi Shen; Xiaofang Hu; Jincai Wu; Shiji Yang; Hao Jiang; Yan-Lin Tang; Bo Zhong; Hao Liang; Weiyue Liu; Yihua Hu; Yong-Mei Huang; Bo Qi; Ji-Gang Ren; Ge-Sheng Pan; Juan Yin; Jianjun Jia; Yu-Ao Chen; Kai Chen; Cheng-Zhi Peng; Jian-Wei Pan

Full-scale verifications for establishing quantum cryptography communication via satellites are reported. Three independent experiments using a hot-air balloon are performed: on a rapidly moving platform over a distance of 40 km, on a floating platform over a distance of 20 km, and over 96 km in air with a huge loss.

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Jian-Wei Pan

University of Science and Technology of China

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Cheng-Zhi Peng

University of Science and Technology of China

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Xing-Can Yao

University of Science and Technology of China

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Chao-Yang Lu

University of Science and Technology of China

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Qiang Zhang

University of Science and Technology of China

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Bo Zhao

University of Science and Technology of China

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He Lu

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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Li Li

University of Science and Technology of China

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Luo-Kan Chen

University of Science and Technology of China

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