Xuezhen Zhang
Chinese Academy of Sciences
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Featured researches published by Xuezhen Zhang.
Review of Scientific Instruments | 2014
Hongwei Zhao; Q. Y. Jin; S. Sha; J. Zhang; Zh. Li; W. D. Liu; L. T. Sun; Xuezhen Zhang; H. W. Zhao
As one of the candidate ion sources for a planned project, the High Intensity heavy-ion Accelerator Facility, a laser ion source has been being intensively studied at the Institute of Modern Physics in the past two years. The charge state distributions of ions produced by irradiating a pulsed 3 J/8 ns Nd:YAG laser on solid targets of a wide range of elements (C, Al, Ti, Ni, Ag, Ta, and Pb) were measured with an electrostatic ion analyzer spectrometer, which indicates that highly charged ions could be generated from low-to-medium mass elements with the present laser system, while the charge state distributions for high mass elements were relatively low. The shot-to-shot stability of ion pulses was monitored with a Faraday cup for carbon target. The fluctuations within ±2.5% for the peak current and total charge and ±6% for pulse duration were demonstrated with the present setup of the laser ion source, the suppression of which is still possible.
Review of Scientific Instruments | 2016
H. Y. Zhao; J. Zhang; Q. Y. Jin; W. D. Liu; G. C. Wang; L. T. Sun; Xuezhen Zhang; H. W. Zhao
A laser ion source based on Nd:YAG laser has been being studied at the Institute of Modern Physics for the production of high intensity high charge state heavy ion beams in the past ten years, for possible applications both in a future accelerator complex and in heavy ion cancer therapy facilities. Based on the previous results for the production of multiple-charged ions from a wide range of heavy elements with a 3 J/8 ns Nd:YAG laser [Zhao et al., Rev. Sci. Instrum. 85, 02B910 (2014)], higher laser energy and intensity in the focal spot are necessary for the production of highly charged ions from the elements heavier than aluminum. Therefore, the laser ion source was upgraded with a new Nd:YAG laser, the maximum energy of which is 8 J and the pulse duration can be adjusted from 8 to 18 ns. Since then, the charge state distributions of ions from various elements generated by the 8 J Nd:YAG laser were investigated for different experimental conditions, such as laser energy, pulse duration, power density in the focal spot, and incidence angle. It was shown that the incidence angle is one of the most important parameters for the production of highly charged ions. The capability of producing highly charged ions from the elements lighter than silver was demonstrated with the incidence angle of 10° and laser power density of 8 × 10(13) W cm(-2) in the focal spot, which makes a laser ion source complementary to the superconducting electron cyclotron resonance ion source for the future accelerator complex especially in terms of the ion beam production from some refractory elements. Nevertheless, great efforts with regard to the extraction of intense ion beams, modification of the ion beam pulse duration, and reliability of the ion source still need to be made for practical applications.
Review of Scientific Instruments | 2014
Yun Cao; Jia Qing Li; Liang Ting Sun; Xuezhen Zhang; Yu Cheng Feng; Hui Wang; Bao Hua Ma; Xi Xia Li
A high charge state all permanent Electron Cyclotron Resonance ion source, Lanzhou All Permanent ECR ion source no. 3-LAPECR3, has been successfully built at IMP in 2012, which will serve as the ion injector of the Heavy Ion Medical Machine (HIMM) project. As a commercial device, LAPECR3 features a compact structure, small size, and low cost. According to HIMM scenario more than 100 eμA of C(5+) ion beam should be extracted from the ion source, and the beam emittance better than 75 π*mm*mrad. In recent commissioning, about 120 eμA of C(5+) ion beam was got when work gas was CH4 while about 262 eμA of C(5+) ion beam was obtained when work gas was C2H2 gas. The design and construction of the ion source and its low-energy transportation beam line, and the preliminary commissioning results will be presented in detail in this paper.
Review of Scientific Instruments | 2010
Ting-Ting Miao; Hongwei Zhao; Zhanwen Liu; Yong Shang; Liangting Sun; Xuezhen Zhang; H. Y. Zhao
Helicon plasma source is known as efficient generator of uniform and high density plasma. A helicon plasma source was developed for investigation of plasma neutralization and plasma lens in the Institute of Modern Physics in China. In this paper, the characteristics of helicon plasma have been studied by using Langmuir four-probe and a high argon plasma density up to 3.9x10(13) cm(-3) have been achieved with the Nagoya type III antenna at the conditions of the magnetic intensity of 200 G, working gas pressure of 2.8x10(-3) Pa, and rf power of 1200 W with a frequency of 27.12 MHz. In the experiment, the important phenomena have been found: for a given magnetic induction intensity, the plasma density became greater with the increase in rf power and tended to saturation, and the helicon mode appeared at the rf power between 200 and 400 W.
Archive | 2018
Guicai Wang; Hongwei Zhao; Qianyu Jin; H. Y. Zhao; Xuezhen Zhang; Liangting Sun; Junjie Zhang
28th Linear Accelerator Conf. (LINAC'16), East Lansing, MI, USA, 25-30 September 2016 | 2017
Liangting Sun; Xing Fang; Yucheng Feng; Junwei Guo; Wang Lu; L. Ma; Cheng Qian; Zhen Shen; Wei Wu; Yao Yang; Wenhui Zhang; Xuezhen Zhang; Hongwei Zhao; Li Zhu
Archive | 2015
Liangting Sun; Hongwei Zhao; Xing Fang; Junwei Guo; Xuezhen Zhang; Wenhui Zhang; Yao Yang; Yucheng Feng; Wang Lu; Cheng Qian
5th Int. Particle Accelerator Conf. (IPAC'14), Dresden, Germany, June 15-20, 2014 | 2014
Xuejun Yin; Jiaer Chen; Heng Du; Shu Gao; Yuan He; Peiyong Jiang; Xiaoni Li; Ge Liu; Yuanrong Lu; L. Ma; Jun Meng; Liangting Sun; Hui Wang; Jiawen Xia; Zhe Xu; Xueqing Yan; Yaqing Yang; Qing-Gao Yao; Youjin Yuan; Xiaohu Zhang; Xuezhen Zhang; Hongwei Zhao; Zhongzu Zhou; Kun Zhu
Archive | 2013
Liangting Sun; Hongwei Zhao; Yun Cao; Zimin Zhang; Wang Lu; Xuezhen Zhang; Wenhui Zhang; Yao Yang; Yucheng Feng; Jinyu Li; Qi Wu; Zhanwen Liu; Daniel Xie
Archive | 2010
Hongwei Zhao; W. H. Zhang; Y. Cao; H. W. Zhao; Xuezhen Zhang; Y. H. Zhu; D. Z Xie