Sheng-Jun Yang
University of Science and Technology of China
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Publication
Featured researches published by Sheng-Jun Yang.
Nature Photonics | 2016
Sheng-Jun Yang; X. Wang; Xiao-Hui Bao; Jian-Wei Pan
An efficient light–matter interface for quantum repeaters is developed. By placing Rb atoms optically confined in a 3D lattice in a ring cavity, an initial retrieval efficiency of 76% together with a 1/e lifetime of 0.22 s are achieved.
Physical Review Letters | 2015
Jun Rui; Yan Jiang; Sheng-Jun Yang; Bo Zhao; Xiao-Hui Bao; Jian-Wei Pan
Spin echo is a powerful technique to extend atomic or nuclear coherence times by overcoming the dephasing due to inhomogeneous broadenings. However, there are disputes about the feasibility of applying this technique to an ensemble-based quantum memory at the single-quanta level. In this experimental study, we find that noise due to imperfections of the rephasing pulses has both intense superradiant and weak isotropic parts. By properly arranging the beam directions and optimizing the pulse fidelities, we successfully manage to operate the spin echo technique in the quantum regime by observing nonclassical photon-photon correlations as well as the quantum behavior of retrieved photons. Our work for the first time demonstrates the feasibility of harnessing the spin echo method to extend the lifetime of ensemble-based quantum memories at the single-quanta level.
Physical Review A | 2015
Sheng-Jun Yang; Xiao-Hui Bao; Jian-Wei Pan
Coherent manipulation of single-photon wave packets is essentially important for optical quantum communication and quantum information processing. In this paper, we realize controllable splitting and modulation of single-photon-level pulses by using a tripod-type atomic medium. The adoption of two control beams enable us to store one signal pulse into superposition of two distinct atomic collective excitations. By controlling the time delay between the two control pulses, we observe splitting of a stored wave packet into two temporally-distinct modes. By controlling the frequency detuning of the control beams, we observe both temporal and frequency-domain interference of the retrieval signal pulses, which provides a method for pulse modulation and multi-splitting of the signal photons.
Physical Review Letters | 2015
Sheng-Jun Yang; X. Wang; Jun Li; Jun Rui; Xiao-Hui Bao; Jian-Wei Pan
Entanglement between a single photon and a quantum memory forms the building blocks for a quantum repeater and quantum network. Previous entanglement sources are typically with low retrieval efficiency, which limits future larger-scale applications. Here, we report a source of highly retrievable spin-wave-photon entanglement. Polarization entanglement is created through interaction of a single photon with an ensemble of atoms inside a low-finesse ring cavity. The cavity is engineered to be resonant for dual spin-wave modes, which thus enables efficient retrieval of the spin-wave qubit. An intrinsic retrieval efficiency up to 76(4)% has been observed. Such a highly retrievable atom-photon entanglement source will be very useful in future larger-scale quantum repeater and quantum network applications.
Physical Review Letters | 2016
Jun Li; Ming-Ti Zhou; Bo Jing; X. Wang; Sheng-Jun Yang; Xiao Jiang; Klaus Mølmer; Xiao-Hui Bao; Jian-Wei Pan
We demonstrate deterministic generation of two distinct collective excitations in one atomic ensemble, and we realize the Hong-Ou-Mandel interference between them. Using Rydberg blockade we create single collective excitations in two different Zeeman levels, and we use stimulated Raman transitions to perform a beam-splitter operation between the excited atomic modes. By converting the atomic excitations into photons, the two-excitation interference is measured by photon coincidence detection with a visibility of 0.89(6). The Hong-Ou-Mandel interference witnesses an entangled NOON state of the collective atomic excitations, and we demonstrate its two times enhanced sensitivity to a magnetic field compared with a single excitation. Our work implements a minimal instance of boson sampling and paves the way for further multimode and multiexcitation studies with collective excitations of atomic ensembles.
conference on lasers and electro-optics | 2011
Xian-Min Jin; Jian Yang; Han Zhang; Han-Ning Dai; Sheng-Jun Yang; Tian-Ming Zhao; Jun Rui; Yu He; Xiao Jiang; Fan Yang; Ge-Sheng Pan; Zhen-Sheng Yuan; Youjin Deng; Zeng-Bing Chen; Xiao-Hui Bao; Bo Zhao; Shuai Chen; Jian-Wei Pan
We report the preparation and storage of frequency-uncorrelated cavity-enhanced SPDC entangled photons. The frequency correlation is eliminated with a suitable pulsed pump. The storage of a single photon entangled with another flying photon is demonstrated.
Nature Photonics | 2011
Han Zhang; Xian-Min Jin; Jian Yang; Han-Ning Dai; Sheng-Jun Yang; Tian-Ming Zhao; Jun Rui; Yu He; Xiao Jiang; Fan Yang; Ge-Sheng Pan; Zhen-Sheng Yuan; Youjin Deng; Zeng-Bing Chen; Xiao-Hui Bao; Shuai Chen; Bo Zhao; Jian-Wei Pan
Physical Review Letters | 2012
Han-Ning Dai; Han Zhang; Sheng-Jun Yang; Tian-Ming Zhao; Jun Rui; Youjin Deng; Li Li; Nai-Le Liu; Shuai Chen; Xiao-Hui Bao; Xian-Min Jin; Bo Zhao; Jian-Wei Pan
arXiv: Quantum Physics | 2010
Xian-Min Jin; Jian Yang; Han Zhang; Han-Ning Dai; Sheng-Jun Yang; Tian-Ming Zhao; Jun Rui; Yu He; Xiao Jiang; Fan Yang; Ge-Sheng Pan; Zhen-Sheng Yuan; Youjin Deng; Zeng-Bing Chen; Xiao-Hui Bao; Bo Zhao; Shuai Chen; Jian-Wei Pan
arXiv: Quantum Physics | 2018
Bo Jing; X. Wang; Yong Yu; Peng-Fei Sun; Yan Jiang; Sheng-Jun Yang; Wen-Hao Jiang; Xi-Yu Luo; Jun Zhang; Xiao Jiang; Xiao-Hui Bao; Jian-Wei Pan