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Dive into the research topics where Shukai He is active.

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Featured researches published by Shukai He.


Applied Physics Letters | 2015

Strong magnetic fields generated with a simple open-ended coil irradiated by high power laser pulses

Beibei Zhu; Yi Li; Dawei Yuan; Yifei Li; Fang Li; Guoqian Liao; J. R. Zhao; Jia-Yong Zhong; F. B. Xue; Shukai He; Weiwu Wang; Feng Lu; Faqiang Zhang; Lei Yang; Kainan Zhou; Na Xie; Wei Hong; Huigang Wei; Kai Zhang; Bo Han; Xiaoxing Pei; Chang Liu; Z. D. Zhang; W. M. Wang; Jianqiang Zhu; Y. Q. Gu; Zongqing Zhao; B. H. Zhang; G. Zhao; Jie Zhang

A simple scheme to produce strong magnetic fields due to cold electron flow in an open-ended coil heated by high power laser pulses is proposed. It differs from previous generation of magnetic fields driven by fast electron current in a capacitor-coil target [S. Fujioka et al., Sci. Rep. 3, 1170 (2013)]. The fields in our experiments are measured by B-dot detectors and proton radiography, respectively. A 205 T strong magnetic field at the center of the coil target is generated in the free space at Iλ2 of 6.85 × 1014 W cm−2 μm2, where I is the laser intensity, and λ is the laser wavelength. The magnetic field strength is proportional to Iλ2. Compared with the capacitor-coil target, the generation mechanism of the magnetic field is straightforward and the coil is easy to be fabricated.


Physics of Plasmas | 2014

Envelope matching for enhanced backward Raman amplification by using self-ionizing plasmas

Zhimeng Zhang; Baohan Zhang; Wei Hong; M. Y. Yu; Jian Teng; Shukai He; Y. Q. Gu

Backward Raman amplification (BRA) in plasmas has been promoted as a means for generating ultrapowerful laser pulses. For the purpose of achieving the maximum intensities over the shortest distances, an envelope matching between the seed pulse and the amplification gain is required, i.e., the seed pulse propagates at the same velocity with the gain such that the peak of the seed pulse can always enjoy the maximum gain. However, such an envelope matching is absent in traditional BRA because in the latter the amplification gain propagates at superluminous velocity while the seed pulse propagates at the group velocity, which is less than the speed of light. It is shown here that, by using self-ionizing plasmas, the speed of the amplification gain can be well reduced to reach the envelope matching regime. This results in a favorable BRA process, in which higher saturated intensity, shorter interaction length and higher energy-transfer efficiency are achieved.


Plasma Physics and Controlled Fusion | 2016

Enhanced x-rays from resonant betatron oscillations in laser wakefield with external wigglers

Zhimeng Zhang; B. H. Zhang; Wei Hong; M. Y. Yu; Zhigang Deng; Jian Teng; Shukai He; Y. Q. Gu

Generation of ultra-short betatron x-rays by laser-accelerated electron beams is of great research interest as it has many applications. In this paper, we propose a scheme for obtaining bright betatron x-rays by applying external wiggler magnetic field in the laser wakefield to resonantly drive the betatron oscillations of the accelerated electrons therein. This results in a significant enhancement of the betatron oscillation amplitude and generation of bright x-rays with high photon energy. The scheme is demonstrated using two-dimensional particle-in-cell simulation and discussed using a simple analytical model.


Review of Scientific Instruments | 2018

An angular-resolved multi-channel Thomson parabola spectrometer for laser-driven ion measurement

Yihang Zhang; Zhe Zhang; Baojun Zhu; Weiman Jiang; Lei Cheng; Lei Zhao; Xiaopeng Zhang; Xu Zhao; Xiaohui Yuan; Bowei Tong; J. Y. Zhong; Shukai He; Feng Lu; Yuchi Wu; Weimin Zhou; Faqiang Zhang; Kainan Zhou; Na Xie; Zheng Huang; Y. Q. Gu; Suming Weng; M. H. Xu; Yingjun Li; Yutong Li

A multi-channel Thomson parabola spectrometer was designed and employed to diagnose ion beams driven by intense laser pulses. Angular-resolved energy spectra for different ion species can be measured in a single shot. It contains parallel dipole magnets and wedged electrodes to fit ion dispersion of different charge-to-mass ratios. The diameter and separation of the entrance pinhole channels were designed properly to provide sufficient resolution and avoid overlapping of dispersed ion beams. To obtain a precise energy spectral resolving, three-dimensional distributions of the electric and magnetic fields were simulated. Experimental measurement of energy-dependent angular distributions of target normal sheath accelerated protons and deuterons was demonstrated. This novel compact design provides a comprehensive characterization for ion beams.


Physics of Plasmas | 2018

Efficient production of strong magnetic fields from ultraintense ultrashort laser pulse with capacitor-coil target

Weiwu Wang; Hong-bo Cai; Jian Teng; Jia Chen; Shukai He; Lianqiang Shan; Feng Lu; Yuchi Wu; Bo Zhang; Wei Hong; Bi Bi; Feng Zhang; Dongxiao Liu; Feibiao Xue; Boyuan Li; Hongjie Liu; Wu He; Jinlong Jiao; Kegong Dong; Faqiang Zhang; Yingling He; Bo Cui; Na Xie; Zongqiang Yuan; Chao Tian; Xiaodong Wang; Kainan Zhou; Zhigang Deng; Zhimeng Zhang; Weimin Zhou

The ion beam bunching in a cascaded target normal sheath acceleration is investigated by theoretical analysis and particle-in-cell simulations. It is found that a proton beam can be accelerated and bunched simultaneously by injecting it into the rising sheath field at the rear side of a laser-irradiated foil target. In the rising sheath field, the ion phase rotation may take place since the back-end protons of the beam feels a stronger field than the front-end protons. Consequently, the injected proton beam can be compressed in the longitudinal direction. At last, the vital role of the ion beam bunching is illustrated by the integrated simulations of two successive stages in a cascaded acceleration.An ultraintense femtosecond laser pulse was used, for the first time, to produce a strong magnetic field with controlled shapes by interactions with a capacitor-coil target with high efficiency. The temporal evolution of the strong magnetic field was obtained by the time-gated proton radiography method. A comparison of high-resolution radiographic images of proton deflection and particle-track simulations indicates a peak magnetic field of ∼20 T. The energy conversion efficiency from the ultraintense laser pulse to the magnetic field is as high as ∼10%. A simple model of the ultraintense laser-driven capacitor-coil target gives a relationship between the magnetic field strength and the electron temperature produced by the laser. Our results indicate that magnetic fields of tens of tesla could be stably produced by most of the existing ultraintense laser facilities. It potentially opens new frontiers in basic physics which require strong magnetic field environments.An ultraintense femtosecond laser pulse was used, for the first time, to produce a strong magnetic field with controlled shapes by interactions with a capacitor-coil target with high efficiency. The temporal evolution of the strong magnetic field was obtained by the time-gated proton radiography method. A comparison of high-resolution radiographic images of proton deflection and particle-track simulations indicates a peak magnetic field of ∼20 T. The energy conversion efficiency from the ultraintense laser pulse to the magnetic field is as high as ∼10%. A simple model of the ultraintense laser-driven capacitor-coil target gives a relationship between the magnetic field strength and the electron temperature produced by the laser. Our results indicate that magnetic fields of tens of tesla could be stably produced by most of the existing ultraintense laser facilities. It potentially opens new frontiers in basic physics which require strong magnetic field environments.


Physics of Plasmas | 2017

Generation of high-power few-cycle lasers via Brillouin-based plasma amplification

Zhimeng Zhang; Baohan Zhang; Wei Hong; Zhigang Deng; Jian Teng; Shukai He; Weimin Zhou; Y. Q. Gu

Strong coupling stimulated Brillouin backscattering (sc-SBS) in plasma is potentially an efficient method of amplifying laser pulses to reach exawatt powers. Here, we report on a new regime of brillouin-based plasma amplification, producing an amplified pulse with a duration of 5 fs and unfocused intensity of 6 × 1017 W/cm2. The results are obtained from 2D particle-in-cell simulations, using two circularly polarized pump and seed pulse with Gaussian transverse profile, both at an intensity of 2.74 × 1016 W/cm2, counter-propagating in a 0.3nc plasma. The significant compression of amplified seed is achieved as a result of sc-SBS amplification as well as additional compression by the interplay between self-phase modulation and negative group delay dispersion. We show that the amplified seed retains high beam qualities since the filamentation can be prevented due to the fast compression. This scheme may pave the way for few-cycle laser pulses to reach exawatt or even zetawatt regime.


Applied Physics Letters | 2016

Proton beam shaped by “particle lens” formed by laser-driven hot electrons

S. H. Zhai; Baifei Shen; W. P. Wang; H.F. Zhang; Shukai He; Feng Lu; Faqiang Zhang; Zhigang Deng; Kegong Dong; Shiji Wang; Kainan Zhou; Na Xie; Xinming Wang; Lu Zhang; S. S. Huang; Hongjie Liu; Zongqing Zhao; Y. Q. Gu; Baohan Zhang; Z. Z. Xu

Two-dimensional tailoring of a proton beam is realized by a “particle lens” in our experiment. A large quantity of electrons, generated by an intense femtosecond laser irradiating a polymer target, produces an electric field strong enough to change the trajectory and distribution of energetic protons flying through the electron area. The experiment shows that a strip pattern of the proton beam appears when hot electrons initially converge inside the plastic plate. Then the shape of the proton beam changes to a “fountain-like” pattern when these hot electrons diffuse after propagating a distance.


Matter and Radiation at Extremes | 2016

Proton radiography of magnetic fields generated with an open-ended coil driven by high power laser pulses

Guoqian Liao; Yutong Li; Baojun Zhu; Yanfei Li; Fang Li; Mengchao Li; Xuan Wang; Zhe Zhang; Shukai He; Weiwu Wang; Feng Lu; Faqiang Zhang; Lei Yang; Kainan Zhou; Na Xie; Wei Hong; Y. Q. Gu; Zongqing Zhao; Baohan Zhang; Jie Zhang


Plasma Physics and Controlled Fusion | 2018

Low-β magnetic reconnection driven by the intense lasers with a double-turn capacitor-coil

Xiaoxia Yuan; J. Y. Zhong; Zhe Zhang; Weimin Zhou; Jian Teng; Yutong Li; Bo Han; Dawei Yuan; Jun Lin; Chang Liu; Yanfei Li; Baojun Zhu; Huigang Wei; G. Y. Liang; Wei Hong; Shukai He; Siqian Yang; Yongqiang Zhao; Zhigang Deng; Feng Lu; Zhimeng Zhang; Bin Zhu; Kainan Zhou; Jingqin Su; Zongqing Zhao; Y. Q. Gu; Gang Zhao; Jie Zhang


arXiv: High Energy Physics - Phenomenology | 2017

Multiple Photon Effects in Nonlinear Compton Scattering

Bo Zhang; Zhimeng Zhang; Zhigang Deng; Wei Hong; Jian Teng; Shukai He; Weimin Zhou; Y. Q. Gu

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Wei Hong

China Academy of Engineering Physics

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Y. Q. Gu

China Academy of Engineering Physics

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Jian Teng

China Academy of Engineering Physics

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Zhimeng Zhang

China Academy of Engineering Physics

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Zhigang Deng

China Academy of Engineering Physics

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Feng Lu

China Academy of Engineering Physics

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Kainan Zhou

China Academy of Engineering Physics

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Weimin Zhou

China Academy of Engineering Physics

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Faqiang Zhang

China Academy of Engineering Physics

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Na Xie

China Academy of Engineering Physics

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