Peng Shixiang, Wu Wenbin, Ren Haitao, Zhang Jingfeng, Xu Yuan, Zhang Ailin, Zhang Tao, Ma Tenghao, Jiang Yaoxiang, Sun Jiang, Wen Jiamei, Guo Zhiyu, Chen Jiaer
State Key Laboratory of Nuclear Physics and Technology and Institute of Heavy Ion Physics, Peking University, Beijing 100871, China.
Rev Sci Instrum. 2019 Dec 1;90(12):123305. doi: 10.1063/1.5128019.
At Peking University (PKU), experimental research as well as theoretical study on how to produce high intense H, H , or H dominated ion beams with a compact permanent magnet 2.45 GHz electron cyclotron resonance (PMECR) ion source have been continuously carried out in the past few decades. Based on the comprehension of hydrogen plasma processes inside a 2.45 GHz PMECR discharge chamber, a three-phase diagram of ion fraction dominant regions that illustrates the relationship between the H, H , and H ion species and working parameters was presented. Meanwhile, a numerical model based on the particle population balance equations was developed for quantitative comprehension of electron cyclotron heated hydrogen plasma. Calculated results of H, H , and H fractions against gas pressure, microwave density, and wall material obtained with this numerical model agree well with the measured ones. Recently, a miniaturized ECR ion source has been developed, and a 52 mA hydrogen beam was extracted. Under the guidance of the model, H, H , and H beams with a fraction of 88%, 80%, and 82%, respectively, were obtained with this miniaturized ECR ion source under suitable working parameters. A PMECR ion source for a proton therapy facility has been built at PKU recently. A 34 mA beam H fraction of 91% was obtained at the first attempt.