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Featured researches published by Yu He.


Nature Nanotechnology | 2015

Single quantum emitters in monolayer semiconductors

Yu-Ming He; Genevieve Clark; John R. Schaibley; Yu He; Ming-Cheng Chen; Yu-Jia Wei; Xing Ding; Qiang Zhang; Wang Yao; Xiaodong Xu; Chao-Yang Lu; Jian-Wei Pan

Single quantum emitters (SQEs) are at the heart of quantum optics and photonic quantum-information technologies. To date, all the demonstrated solid-state single-photon sources are confined to one-dimensional (1D; ref. 3) or 3D materials. Here, we report a new class of SQEs based on excitons that are spatially localized by defects in 2D tungsten-diselenide (WSe2) monolayers. The optical emission from these SQEs shows narrow linewidths of ∼130 μeV, about two orders of magnitude smaller than those of delocalized valley excitons. Second-order correlation measurements revealed a strong photon antibunching, which unambiguously established the single-photon nature of the emission. The SQE emission shows two non-degenerate transitions, which are cross-linearly polarized. We assign this fine structure to two excitonic eigenmodes whose degeneracy is lifted by a large ∼0.71 meV coupling, probably because of the electron-hole exchange interaction in the presence of anisotropy. Magneto-optical measurements also reveal an exciton g factor of ∼8.7, several times larger than those of delocalized valley excitons. In addition to their fundamental importance, establishing new SQEs in 2D quantum materials could give rise to practical advantages in quantum-information processing, such as an efficient photon extraction and a high integratability and scalability.


Physical Review Letters | 2016

On-demand single photons with high extraction efficiency and near-unity indistinguishability from a resonantly driven quantum dot in a micropillar

Xing Ding; Yu He; Z.-C. Duan; Niels Gregersen; Ming-Cheng Chen; Sebastian Unsleber; Sebastian Maier; Christian Schneider; M. Kamp; Sven Höfling; Chao-Yang Lu; Jian-Wei Pan

Scalable photonic quantum technologies require on-demand single-photon sources with simultaneously high levels of purity, indistinguishability, and efficiency. These key features, however, have only been demonstrated separately in previous experiments. Here, by s-shell pulsed resonant excitation of a Purcell-enhanced quantum dot-micropillar system, we deterministically generate resonance fluorescence single photons which, at π pulse excitation, have an extraction efficiency of 66%, single-photon purity of 99.1%, and photon indistinguishability of 98.5%. Such a single-photon source for the first time combines the features of high efficiency and near-perfect levels of purity and indistinguishabilty, and thus opens the way to multiphoton experiments with semiconductor quantum dots.


Nano Letters | 2014

Deterministic and robust generation of single photons from a single quantum dot with 99.5% indistinguishability using adiabatic rapid passage.

Yu-Jia Wei; Yu-Ming He; Ming-Cheng Chen; Yi-Nan Hu; Yu He; Dian Wu; Christian Schneider; M. Kamp; Sven Höfling; Chao-Yang Lu; Jian-Wei Pan

Single photons are attractive candidates of quantum bits (qubits) for quantum computation and are the best messengers in quantum networks. Future scalable, fault-tolerant photonic quantum technologies demand both stringently high levels of photon indistinguishability and generation efficiency. Here, we demonstrate deterministic and robust generation of pulsed resonance fluorescence single photons from a single semiconductor quantum dot using adiabatic rapid passage, a method robust against fluctuation of driving pulse area and dipole moments of solid-state emitters. The emitted photons are background-free, have a vanishing two-photon emission probability of 0.3% and a raw (corrected) two-photon Hong-Ou-Mandel interference visibility of 97.9% (99.5%), reaching a precision that places single photons at the threshold for fault-tolerant surface-code quantum computing. This single-photon source can be readily scaled up to multiphoton entanglement and used for quantum metrology, boson sampling, and linear optical quantum computing.


Physical Review Letters | 2014

Temperature-dependent Mollow triplet spectra from a single quantum dot : Rabi frequency renormalization and sideband linewidth insensitivity

Yu Jia Wei; Yu He; Yu-Ming He; Chao-Yang Lu; Jian-Wei Pan; Christian Schneider; M. Kamp; Sven Höfling; Dara P. S. McCutcheon; Ahsan Nazir

We investigate temperature-dependent resonance fluorescence spectra obtained from a single self-assembled quantum dot. A decrease of the Mollow triplet sideband splitting is observed with increasing temperature, an effect we attribute to a phonon-induced renormalization of the driven dot Rabi frequency. We also present first evidence for a nonperturbative regime of phonon coupling, in which the expected linear increase in sideband linewidth as a function of temperature is canceled by the corresponding reduction in Rabi frequency. These results indicate that dephasing in semiconductor quantum dots may be less sensitive to changes in temperature than expected from a standard weak-coupling analysis of phonon effects.


Physical Review Letters | 2015

Dynamically controlled resonance fluorescence spectra from a doubly dressed single InGaAs quantum dot.

Yu He; Yu-Ming He; Jian-Hong Liu; Yu-Jia Wei; H. Y. Ramírez; Mete Atatüre; Christian Schneider; M. Kamp; Sven Höfling; Chao-Yang Lu; Jian-Wei Pan

We report the first experimental demonstration of the interference-induced spectral line elimination predicted by Zhu and Scully [Phys. Rev. Lett. 76, 388 (1996)] and Ficek and Rudolph [Phys. Rev. A 60, R4245 (1999)]. We drive an exciton transition of a self-assembled quantum dot in order to realize a two-level system exposed to a bichromatic laser field and observe the nearly complete elimination of the resonance fluorescence spectral line at the driving laser frequency. This is caused by quantum interference between coupled transitions among the doubly dressed excitonic states, without population trapping. We also demonstrate a multiphoton ac Stark effect with shifted subharmonic resonances and dynamical modifications of resonance fluorescence spectra by using double dressing.


conference on lasers and electro-optics | 2011

Preparation and storage of frequency-uncorrelated entangled photons from cavity-enhanced SPDC

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 Nanotechnology | 2013

On-demand semiconductor single-photon source with near-unity indistinguishability

Yu-Ming He; Yu He; Yu-Jia Wei; Dian Wu; Mete Atatüre; Christian Schneider; Sven Höfling; M. Kamp; Chao-Yang Lu; Jian-Wei Pan


Nature Photonics | 2011

Preparation and storage of frequency-uncorrelated entangled photons from cavity-enhanced spontaneous parametric downconversion

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


Nature Photonics | 2017

High-efficiency multiphoton boson sampling

Hui Wang; Yu He; Yu-Huai Li; Zu-En Su; Bo Li; He-Liang Huang; Xing Ding; Ming-Cheng Chen; C. Liu; Jian Qin; J. Li; Yu-Ming He; Christian Schneider; M. Kamp; Cheng-Zhi Peng; Sven Höfling; Chao-Yang Lu; Jian-Wei Pan


Physical Review Letters | 2016

Near-transform-limited single photons from an efficient solid-state quantum emitter

Hui Wang; Z.-C. Duan; Yin-Hai Li; Si Chen; J. Li; Y. M. He; Ming-Cheng Chen; Yu He; Xing Ding; Cheng-Zhi Peng; Christian Schneider; M. Kamp; Sven Höfling; Chao-Yang Lu; Jian-Wei Pan

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Jian-Wei Pan

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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M. Kamp

University of Würzburg

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Ming-Cheng Chen

University of Science and Technology of China

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Sven Höfling

University of St Andrews

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Xing Ding

University of Science and Technology of China

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Xiao Jiang

University of Science and Technology of China

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Bo Zhao

University of Science and Technology of China

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C. Liu

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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