Yang Zou
University of Science and Technology of China
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Publication
Featured researches published by Yang Zou.
Nature Communications | 2015
Jian-Shun Tang; Zong-Quan Zhou; Yi-Tao Wang; Yu-Long Li; Xiao Liu; Yi-Lin Hua; Yang Zou; Shuang Wang; De-Yong He; Geng Chen; Y. J. Sun; Ying Yu; Mi-Feng Li; Guo-Wei Zha; Haiqiao Ni; Zhichuan Niu; Chuan-Feng Li; Guang-Can Guo
Quantum repeaters are critical components for distributing entanglement over long distances in presence of unavoidable optical losses during transmission. Stimulated by the Duan–Lukin–Cirac–Zoller protocol, many improved quantum repeater protocols based on quantum memories have been proposed, which commonly focus on the entanglement-distribution rate. Among these protocols, the elimination of multiple photons (or multiple photon-pairs) and the use of multimode quantum memory are demonstrated to have the ability to greatly improve the entanglement-distribution rate. Here, we demonstrate the storage of deterministic single photons emitted from a quantum dot in a polarization-maintaining solid-state quantum memory; in addition, multi-temporal-mode memory with 1, 20 and 100 narrow single-photon pulses is also demonstrated. Multi-photons are eliminated, and only one photon at most is contained in each pulse. Moreover, the solid-state properties of both sub-systems make this configuration more stable and easier to be scalable. Our work will be helpful in the construction of efficient quantum repeaters based on all-solid-state devices.
Physical Review B | 2012
Dong Sun; Julien Rioux; J. E. Sipe; Yang Zou; Momchil T. Mihnev; Claire Berger; Walt A. de Heer; Phillip N. First; Theodore B. Norris
Most experimental studies to date of multilayer epitaxial graphene on C-face SiC have indicated that the electronic states of different layers are decoupled as a consequence of rotational stacking. We have measured the third order nonlinear tensor in epitaxial graphene as a novel approach to probe interlayer electronic coupling, by studying THz emission from coherently controlled photocurrents as a function of the optical pump and THz beam polarizations. We find that the polarization dependence of the coherently controlled THz emission expected from perfectly uncoupled layers, i.e. a single graphene sheet, is not observed. We hypothesize that the observed angular dependence arises from weak coupling between the layers; a model calculation of the angular dependence treating the multilayer structure as a stack of independent bilayers with variable interlayer coupling qualitatively reproduces the polarization dependence, providing evidence for coupling.
arXiv: Quantum Physics | 2015
Jian-Shun Tang; Yi-Tao Wang; Geng Chen; Yang Zou; Chuan-Feng Li; Guang-Can Guo; Ying Yu; Mi-Feng Li; Guo-Wei Zha; Hai-Qiao Ni; Zhi-Chuan Niu; Manuel Gessner; Heinz-Peter Breuer
The measurement of correlations between different degrees of freedom is an important, but, in general, extremely difficult task in many applications of quantum mechanics. Here, we report an all-optical experimental detection and quantification of quantum correlations between the polarization and the frequency degrees of freedom of single photons by means of local operations acting only on the polarization degree of freedom. These operations only require experimental control over an easily accessible two-dimensional subsystem, despite handling strongly mixed quantum states comprised of a continuum of orthogonal frequency states. Our experiment thus represents a photonic realization of a scheme for the local detection of quantum correlations in a truly infinite-dimensional continuous-variable system, which excludes an efficient finite-dimensional truncation.
Physica A-statistical Mechanics and Its Applications | 2011
Hao-Tian Wang; Chuan-Feng Li; Yang Zou; Rong-Chun Ge; Guang-Can Guo
We present a detailed study of the entanglement dynamics of a two-qubit system coupled to independent non-Markovian environments, employing hierarchy equations. This recently developed theoretical treatment can conveniently solve non-Markovian problems. We concentrate on calculating the death and rebirth time points of the entanglement to obtain a general view of the concurrence curve and explore the behavior of entanglement dynamics with respect to the coupling strength, the characteristic frequency of the noise bath and the environment temperature.
EPL | 2010
Geng Chen; Chuan-Feng Li; Zhen-Qiang Yin; Yang Zou; Lixin He; Guang-Can Guo
We propose a scheme to generate hyper-entangled photon pairs from single quantum dots (SQDs). Single photons emitted by SQD are manipulated to be entangled after post-selection. Crucially, exciton fine-structure splitting, which was previously deemed undesirable in similar schemes, is used here to produce photon pairs entangled in both frequency and polarization degrees of freedom. This hyper-entangled two-photon state is potentially more powerful than a normal entangled state for quantum state engineering and quantum information processing.
Optics Express | 2017
Y. J. Sun; Yang Zou; Geng Chen; Jian-Shun Tang; Hai-Qiao Ni; Mi-Feng Li; Guo-Wei Zha; Zhi-Chuan Niu; Yong-Jian Han; Chuan-Feng Li; Guang-Can Guo
The inhomogeneous broadening of the bi-exciton state in quantum dots, i.e., the inhomogeneous broadening of the upper level of the cascade process, is not only a fundamental problem in quantum dots, but also closely related with the coherent control of this complex system and the quality of the entangled photon pairs, especially the time-bin entangled photon pairs. This inhomogeneous broadening is inherently a two-photon correlated phenomenon. In this work, we construct a genuine Franson-type nonlocal interference process to measure the inhomogeneous broadening of the bi-exciton state. The results show that the inhomogeneous broadening of the bi-exciton state is considerably smaller than that of the exciton state, that is why the entangled photon pairs can be generated by the cascade process in the quantum dot.
Scientific Reports | 2016
Geng Chen; Yang Zou; Wen-Hao Zhang; Zi-Huai Zhang; Zong-Quan Zhou; De-Yong He; Jian-Shun Tang; Bi-Heng Liu; Ying Yu; Guo-Wei Zha; Haiqiao Ni; Zhichuan Niu; Yong-Jian Han; Chuan-Feng Li; Guang-Can Guo
Quantum emitters generating individual entangled photon pairs (IEPP) have significant fundamental advantages over schemes that suffer from multiple photon emission, or schemes that require post-selection techniques or the use of photon-number discriminating detectors. Quantum dots embedded within nanowires (QD-NWs) represent one of the most promising candidate for quantum emitters that provide a high collection efficiency of photons. However, a quantum emitter that generates IEPP in the telecom band is still an issue demanding a prompt solution. Here, we demonstrate in principle that IEPPs in the telecom band can be created by combining a single QD-NW and a nonlinear crystal waveguide. The QD-NW system serves as the single photon source, and the emitted visible single photons are split into IEPPs at approximately 1.55 μm through the process of spontaneous parametric down conversion (SPDC) in a periodically poled lithium niobate (PPLN) waveguide. The compatibility of the QD-PPLN interface is the determinant factor in constructing this novel hybrid-quantum-emitter (HQE). Benefiting from the desirable optical properties of QD-NWs and the extremely high nonlinear conversion efficiency of PPLN waveguides, we successfully generate IEPPs in the telecom band with the polarization degree of freedom. The entanglement of the generated photon pairs is confirmed by the entanglement witness. Our experiment paves the way to producing HQEs inheriting the advantages of multiple systems.
Physical Review A | 2010
Zong-Quan Zhou; Chuan-Feng Li; Geng Chen; Jian-Shun Tang; Yang Zou; Ming Gong; Guang-Can Guo
Exciton fine-structure splittings within quantum dots introduce phase differences between the two biexciton decay paths that greatly reduce the entanglement of photon pairs generated via biexciton recombination. We analyze this problem in the frequency domain and propose a practicable method to compensate the phase difference by inserting a spatial light modulator, which substantially improves the entanglement of the photon pairs without any loss.
Physica E-low-dimensional Systems & Nanostructures | 2009
Geng Chen; Jian-Shun Tang; Chuan-Feng Li; Ming Gong; Yang Zou; Jin-Shi Xu; Lei Chen; Lixin He; Guang-Can Guo
Physical Review X | 2014
Geng Chen; Yang Zou; Xiao-Ye Xu; Jian-Shun Tang; Yu-Long Li; Jin-Shi Xu; Yong-Jian Han; Chuan-Feng Li; Guang-Can Guo; Haiqiao Ni; Ying Yu; Mi-Feng Li; Guo-Wei Zha; Zhichuan Niu; Yaron Kedem