Wengang Zhang
Tsinghua University
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Publication
Featured researches published by Wengang Zhang.
Nature | 2014
Chong Zu; Weibin Wang; Li He; Wengang Zhang; C.-Y. Dai; Fei Wang; Lu-Ming Duan
Experimental realization of a universal set of quantum logic gates is the central requirement for the implementation of a quantum computer. In an ‘all-geometric’ approach to quantum computation, the quantum gates are implemented using Berry phases and their non-Abelian extensions, holonomies, from geometric transformation of quantum states in the Hilbert space. Apart from its fundamental interest and rich mathematical structure, the geometric approach has some built-in noise-resilience features. On the experimental side, geometric phases and holonomies have been observed in thermal ensembles of liquid molecules using nuclear magnetic resonance; however, such systems are known to be non-scalable for the purposes of quantum computing. There are proposals to implement geometric quantum computation in scalable experimental platforms such as trapped ions, superconducting quantum bits and quantum dots, and a recent experiment has realized geometric single-bit gates in a superconducting system. Here we report the experimental realization of a universal set of geometric quantum gates using the solid-state spins of diamond nitrogen–vacancy centres. These diamond defects provide a scalable experimental platform with the potential for room-temperature quantum computing, which has attracted strong interest in recent years. Our experiment shows that all-geometric and potentially robust quantum computation can be realized with solid-state spin quantum bits, making use of recent advances in the coherent control of this system.
Physical Review B | 2017
Fu-He Wang; Yuanyuan Huang; Z. Zhang; Chong Zu; Panyu Hou; Xinxing Yuan; Weiyang Wang; Wengang Zhang; Liqiang He; X. Y. Chang; L.-M. Duan
We experimentally demonstrate room-temperature storage of quantum entanglement using two nuclear spins weakly coupled to the electronic spin carried by a single nitrogen-vacancy center in diamond. We realize universal quantum gate control over the three-qubit spin system and produce entangled states in the decoherence-free subspace of the two nuclear spins. By injecting arbitrary collective noise, we demonstrate that the decoherence-free entangled state has coherence time longer than that of other entangled states by an order of magnitude in our experiment.
Physical Review B | 2018
Fu-He Wang; Panyu Hou; Yuanyuan Huang; Wengang Zhang; X. L. Ouyang; Xi Wang; X. Z. Huang; Hua Zhang; Liqiang He; X. Y. Chang; L.-M. Duan
Bulletin of the American Physical Society | 2018
Panyu Hou; Xianzhi Huang; Xiaolong Ouyang; Xin Wang; Wengang Zhang; X. Y. Chang; Lu-Ming Duan
Bulletin of the American Physical Society | 2018
Fei Wang; Panyu Hou; Yuanyuan Huang; Wengang Zhang; Lu-Ming Duan
Bulletin of the American Physical Society | 2018
Yuanyuan Huang; Yukai Wu; Fei Wang; Wengang Zhang; Xinxing Yuan; Panyu Hou; Lu-Ming Duan
Bulletin of the American Physical Society | 2017
Li He; Wenqian Lian; Xinxing Yuan; Huili Zhang; Chuheng Zhang; X. Y. Chang; Panyu Hou; Wengang Zhang; Xin Wang; Xiaolong Ouyang; Xianzhi Huang; Lu-Ming Duan
Bulletin of the American Physical Society | 2017
Fei Wang; Chong Zu; Li He; Weibin Wang; Wengang Zhang; Lu-Ming Duan
Bulletin of the American Physical Society | 2016
Wengang Zhang; Xianzhi Huang; Xiaolong Ouyang; Xin Wang; Panyu Hou; Wenqian Lian; Huili Zhang; Chuheng Zhang; Li He; X. Y. Chang; Lu-Ming Duan
Bulletin of the American Physical Society | 2015
Weibin Wang; Chong Zu; Li He; Wengang Zhang; Lu-Ming Duan