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Dive into the research topics where J. R. Zhao is active.

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Featured researches published by J. R. Zhao.


Scientific Reports | 2013

Bright betatron X-ray radiation from a laser-driven-clustering gas target

Liming Chen; W. C. Yan; Dazhang Li; Z. D. Hu; Lu Zhang; Wei-Min Wang; Nasr A. M. Hafz; J. Y. Mao; Kai Huang; Y. Y. Ma; J. R. Zhao; Juan Ma; Y. T. Li; X. Lu; Zheng-Ming Sheng; Zuo Wei; Jian Gao; Jie Zhang

Hard X-ray sources from femtosecond (fs) laser-produced plasmas, including the betatron X-rays from laser wakefield-accelerated electrons, have compact sizes, fs pulse duration and fs pump-probe capability, making it promising for wide use in material and biological sciences. Currently the main problem with such betatron X-ray sources is the limited average flux even with ultra-intense laser pulses. Here, we report ultra-bright betatron X-rays can be generated using a clustering gas jet target irradiated with a small size laser, where a ten-fold enhancement of the X-ray yield is achieved compared to the results obtained using a gas target. We suggest the increased X-ray photon is due to the existence of clusters in the gas, which results in increased total electron charge trapped for acceleration and larger wiggling amplitudes during the acceleration. This observation opens a route to produce high betatron average flux using small but high repetition rate laser facilities for applications.


Applied Physics Letters | 2014

Simultaneous generation of quasi-monoenergetic electron and betatron X-rays from nitrogen gas via ionization injection

Kai Huang; Dazhang Li; W. C. Yan; Minghua Li; M. Z. Tao; Zi-Yu Chen; Xulei Ge; F. Liu; Y. Y. Ma; J. R. Zhao; Nasr A. M. Hafz; Jie Zhang; Liming Chen

Upon the interaction of 60 TW Ti: sapphire laser pulses with 4 mm long supersonic nitrogen gas jet, a directional x-ray emission was generated along with the generation of stable quasi-monoenergetic electron beams having a peak energy of 130 MeV and a relative energy spread of ∼ 20%. The betatron x-ray emission had a small divergence of 7.5 mrad and a critical energy of 4 keV. The laser wakefield acceleration process was stimulated in a background plasma density of merely 5.4 × 1017 cm−3 utilizing ionization injection. The non-self-focusing and stable propagation of the laser pulse in the pure nitrogen gaseous plasma should be responsible for the simultaneous generation of the high-quality X-ray and electron beams. Those ultra-short and naturally-synchronized beams could be applicable to ultrafast pump-probe experiments.


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.


Optics Letters | 2015

Wavefront sensorless adaptive optics based on the trust region method

Qingyun Yang; J. R. Zhao; Minghao Wang; Jianlu Jia

We present what is to the best of our knowledge the first implementation of a trust region method for derivative-free optimization (TRDF) in a wavefront sensorless (WFSless) adaptive optics (AO) system. We compare the trust region method with the simulated annealing (SA) algorithm and stochastic parallel gradient descent (SPGD) algorithm. The experimental results demonstrate that the trust region method is superior to both the SA algorithm and SPGD algorithm with respect to convergence rates. These results indicate that the trust region method is a promising approach for correcting static or slowly changing wavefront aberrations in practical applications.


Scientific Reports | 2016

Resonantly enhanced betatron hard x-rays from ionization injected electrons in a laser plasma accelerator

Kai Huang; Yangmei Li; Dazhang Li; Liming Chen; M. Z. Tao; Y. Y. Ma; J. R. Zhao; Minghua Li; Mingwei Chen; Mohammad Mirzaie; Nasr A. M. Hafz; Thomas Sokollik; Zheng-Ming Sheng; Jie Zhang

Ultrafast betatron x-ray emission from electron oscillations in laser wakefield acceleration (LWFA) has been widely investigated as a promising source. Betatron x-rays are usually produced via self-injected electron beams, which are not controllable and are not optimized for x-ray yields. Here, we present a new method for bright hard x-ray emission via ionization injection from the K-shell electrons of nitrogen into the accelerating bucket. A total photon yield of 8 × 108/shot and 108 photons with energy greater than 110 keV is obtained. The yield is 10 times higher than that achieved with self-injection mode in helium under similar laser parameters. The simulation suggests that ionization-injected electrons are quickly accelerated to the driving laser region and are subsequently driven into betatron resonance. The present scheme enables the single-stage betatron radiation from LWFA to be extended to bright γ-ray radiation, which is beyond the capability of 3rd generation synchrotrons.


Physics of Plasmas | 2017

Generation of 20 kA electron beam from a laser wakefield accelerator

Yangmei Li; Dazhang Li; Kai Huang; M. Z. Tao; M. H. Li; J. R. Zhao; Y. Y. Ma; X. Guo; Jia-Xiang Wang; Min Chen; Nasr A. M. Hafz; Jie Zhang; Liming Chen

We present the experimentally generated electron bunch from laser-wakefield acceleration (LWFA) with a charge of 620 pC and a maximum energy up to 0.6 GeV by irradiating 80 TW laser pulses at a 3 mm Helium gas jet. The charge of injected electrons is much larger than the normal scaling laws of LWFA in bubble regime. We also got a quasi-monoenergetic electron beam with energy peaked at 249 MeV and a charge of 68 pC with the similar laser conditions but lower plasma density. As confirmed by 2D particle-in-cell simulations, the boosted bunch charge is due to the continuous injection caused by the self-steepening and self-compression of a laser pulse. During the nonlinear evolution of the laser pulse, the bubble structure broadens and stretches, leading to a longer dephasing length and larger beam charge.


Review of Scientific Instruments | 2014

Intense high repetition rate Mo Kα x-ray source generated from laser solid interaction for imaging application

Kai Huang; Minghua Li; W. C. Yan; X. Guo; Dazhang Li; Yuhong Chen; Y. Y. Ma; J. R. Zhao; Yifei Li; Jie Zhang; L. M. Chen

We report an efficient Mo Kα x-ray source produced by interaction of femtosecond Ti: sapphire laser pulses with a solid Molybdenum target working at 1 kHz repetition rate. The generated Mo Kα x-ray intensity reaches to 4.7 × 10(10) photons sr(-1) s(-1), corresponding to an average power of 0.8 mW into 2π solid angle. The spatial resolution of this x-ray source is measured to be 26 lp/mm. With the high flux and high spatial resolution characteristics, high resolving in-line x-ray radiography was realized on test objects and large size biological samples within merely half a minute. This experiment shows the possibility of laser plasma hard x-ray source as a new low cost and high resolution system for radiography and its ability of ultrafast x-ray pump-probe study of matter.


Scientific Reports | 2016

A novel laser-collider used to produce monoenergetic 13.3 MeV (7)Li (d, n) neutrons.

J. R. Zhao; Xing Zhang; Dawei Yuan; Y. T. Li; D. Z. Li; Y. J. Rhee; Ze Zhang; Fang Li; Baoqiang Zhu; Yan F. Li; Bo Han; Chang Liu; Yi-Tong Ma; Yi F. Li; M. Z. Tao; Menglong Li; Xin Guo; Xiuguang Huang; Sizu Fu; Jianqiang Zhu; G. Zhao; L. M. Chen; Changbo Fu; Jie Zhang

Neutron energy is directly correlated with the energy of the incident ions in experiments involving laser-driven nuclear reactions. Using high-energy incident ions reduces the energy concentration of the generated neutrons. A novel “laser-collider” method was used at the Shenguang II laser facility to produce monoenergetic neutrons via 7Li (d, n) nuclear reactions. The specially designed K-shaped target significantly increased the numbers of incident d and Li ions at the keV level. Ultimately, 13.3 MeV neutrons were obtained. Considering the time resolution of the neutron detector, we demonstrated that the produced neutrons were monoenergetic. Interferometry and a Multi hydro-dynamics simulation confirmed the monoenergetic nature of these neutrons.


Review of Scientific Instruments | 2015

Neutron yield enhancement in laser-induced deuterium-deuterium fusion using a novel shaped target.

J. R. Zhao; Xiaopeng Zhang; Dawei Yuan; L. M. Chen; Y. T. Li; Changbo Fu; Y. J. Rhee; Fang Li; Baoqiang Zhu; Yan. F. Li; Guoqian Liao; Kai Zhang; Bo Han; Chang Liu; Kai Huang; Y. Y. Ma; Yi. F. Li; J. Xiong; Xiuguang Huang; Sizu Fu; Jianqiang Zhu; G. Zhao; Jie Zhang

Neutron yields have direct correlation with the energy of incident deuterons in experiments of laser deuterated target interaction [Roth et al., Phys. Rev. Lett. 110, 044802 (2013) and Higginson et al., Phys. Plasmas 18, 100703 (2011)], while deuterated plasma density is also an important parameter. Experiments at the Shenguang II laser facility have produced neutrons with energy of 2.45 MeV using d (d, n) He reaction. Deuterated foil target and K-shaped target were employed to study the influence of plasma density on neutron yields. Neutron yield generated by K-shaped target (nearly 10(6)) was two times higher than by foil target because the K-shaped target results in higher density plasma. Interferometry and multi hydro-dynamics simulation confirmed the importance of plasma density for enhancement of neutron yields.


Applied Physics Letters | 2015

Highly collimated monoenergetic target-surface electron acceleration in near-critical- density plasmas

J. Y. Mao; Liming Chen; Kai Huang; Y. Y. Ma; J. R. Zhao; Dazhang Li; W. C. Yan; Juan Ma; Martin Aeschlimann; Zuo Wei; Jie Zhang

Optimized-quality monoenergetic target surface electron beams at MeV level with low normalized emittance (0.03π mm mrad) and high charge (30 pC) per shot have been obtained from 3 TW laser-solid interactions at a grazing incidence. The 2-Dimension particle-in-cell simulations suggest that electrons are wake-field accelerated in a large-scale, near-critical-density preplasma. It reveals that a bubble-like structure as an accelerating cavity appears in the near-critical-density plasma region and travels along the target surface. A bunch of electrons are pinched transversely and accelerated longitudinally by the wake field in the bubble. The outstanding normalized emittance and monochromaticity of such highly collimated surface electron beams could make it an ideal beam for fast ignition or may serve as an injector in traditional accelerators.

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Jie Zhang

Shanghai Jiao Tong University

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Kai Huang

Chinese Academy of Sciences

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Y. Y. Ma

Shanghai Jiao Tong University

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Dazhang Li

Chinese Academy of Sciences

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Jianlu Jia

Chinese Academy of Sciences

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Liming Chen

Shanghai Jiao Tong University

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Qingyun Yang

Chinese Academy of Sciences

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Minghao Wang

Chinese Academy of Sciences

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W. C. Yan

Chinese Academy of Sciences

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Y. T. Li

Chinese Academy of Sciences

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