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Dive into the research topics where Chong Zu is active.

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Featured researches published by Chong Zu.


Nature | 2014

Experimental realization of universal geometric quantum gates with solid-state spins

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 Letters | 2012

State-Independent Experimental Test of Quantum Contextuality in an Indivisible System

Chong Zu; Y. Wang; Dong-Ling Deng; X. Y. Chang; K. Liu; Panyu Hou; Haijun Yang; Lu-Ming Duan

We report the first state-independent experimental test of quantum contextuality on a single photonic qutrit (three-dimensional system), based on a recent theoretical proposal [Phys. Rev. Lett. 108, 030402 (2012)]. Our experiment spotlights quantum contextuality in its most basic form, in a way that is independent of either the state or the tensor product structure of the system.


New Journal of Physics | 2012

Experimental demonstration of quantum gain in a zero-sum game

Chong Zu; Y. X. Wang; X. Y. Chang; Zhaohui Wei; Shengyu Zhang; Lu-Ming Duan

We propose and experimentally demonstrate a zero-sum game that is in a fair Nash equilibrium for classical players, but has the property that a quantum player can always win using an appropriate strategy. The gain of the quantum player is measured experimentally for different quantum strategies and input states. It is found that the quantum gain is maximized by a maximally entangled state, but does not decrease to zero when entanglement disappears. Instead, it links with another kind of quantum correlation described by discord for the qubit case and the connection is demonstrated both theoretically and experimentally.


Scientific Reports | 2015

Experimental demonstration of a quantum router

Xinxing Yuan; Jiajun Ma; Panyu Hou; X. Y. Chang; Chong Zu; Lu-Ming Duan

The router is a key element for a network. We describe a scheme to realize genuine quantum routing of single-photon pulses based on cascading of conditional quantum gates in a Mach-Zehnder interferometer and report a proof-of-principle experiment for its demonstration using linear optics quantum gates. The polarization of the control photon routes in a coherent way the path of the signal photon while preserving the qubit state of the signal photon represented by its polarization. We demonstrate quantum nature of this router by showing entanglement generated between the initially unentangled control and signal photons, and confirm that the qubit state of the signal photon is well preserved by the router through quantum process tomography.


Nature Communications | 2016

Quantum teleportation from light beams to vibrational states of a macroscopic diamond.

Panyu Hou; Yuanyuan Huang; Xinxing Yuan; X. Y. Chang; Chong Zu; Liqiang He; L.-M. Duan

With the recent development of optomechanics, the vibration in solids, involving collective motion of trillions of atoms, gradually enters into the realm of quantum control. Here, building on the recent remarkable progress in optical control of motional states of diamonds, we report an experimental demonstration of quantum teleportation from light beams to vibrational states of a macroscopic diamond under ambient conditions. Through quantum process tomography, we demonstrate average teleportation fidelity (90.6±1.0)%, clearly exceeding the classical limit of 2/3. The experiment pushes the target of quantum teleportation to the biggest object so far, with interesting implications for optomechanical quantum control and quantum information science.


Physical Review Letters | 2013

Experimental Distillation of Quantum Nonlocality

Chong Zu; Dong-Ling Deng; Panyu Hou; X. Y. Chang; Fei Wang; Lu-Ming Duan

We report the first experimental demonstration of distillation of quantum nonlocality, confirming the recent theoretical protocol [Phys. Rev. Lett. 102, 120401 (2009)]. Quantum nonlocality is described by a correlation box with binary inputs and outputs, and the nonlocal boxes are realized through appropriate measurements on polarization entangled photon pairs. We demonstrate that nonlocality is amplified by connecting two nonlocal boxes into a composite one through local operations and four-photon measurements.


Annals of Physics | 2017

Experimental test of entangled histories

Jordan S. Cotler; Lu Ming Duan; Pan Yu Hou; Frank Wilczek; Da Xu; Zhang-qi Yin; Chong Zu

We propose and demonstrate experimentally a scheme to create entangled history states of the Greenberger-Horne-Zeilinger (GHZ) type. In our experiment, the polarization states of a single photon at three different times are prepared as a GHZ entangled history state. We define a GHZ functional which attains a maximum value


Physical Review B | 2017

Room-temperature storage of quantum entanglement using decoherence-free subspace in a solid-state spin system

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

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New Journal of Physics | 2014

Experimental observation of entanglement duality for identical particles

Jiajun Ma; Xinxing Yuan; Chong Zu; X. Y. Chang; Panyu Hou; Lu-Ming Duan

on the ideal GHZ entangled history state and is bounded above by


arXiv: Quantum Physics | 2013

Exploring Quantum Contextuality to Generate True Random Numbers

Dong-Ling Deng; Chong Zu; X. Y. Chang; Panyu Hou; Haijun Yang; Y. Wang; Lu-Ming Duan

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Haijun Yang

Shanghai Jiao Tong University

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Satcher Hsieh

Washington University in St. Louis

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