| Literature DB >> 32486709 |
Sadaoki Kojima1, Shunsuke Inoue2, Thanh Hung Dinh1, Noboru Hasegawa1, Michiaki Mori1, Hironao Sakaki1, Yoichi Yamamoto1, Teru Sasaki1, Keiichiro Shiokawa1, Kotaro Kondo1, Takashi Yamanaka2, Masaki Hashida2, Shuji Sakabe2, Masaharu Nishikino1, Kiminori Kondo1.
Abstract
This article reports the development of a compact Thomson parabola spectrometer for laser-accelerated ions that can measure angular distribution with a high energy resolution and has a variable measurable energy range. The angular-resolved energy spectra for different ion species can be measured in a single shot, and the sampling angle can be selected from outside the vacuum region. The electric and magnetic fields are applied to the ion dispersion by using a permanent magnetic circuit and annulus sector-shaped electrodes with a wedge configuration. The compact magnetic circuit consists of permanent magnets, fixed yokes, and movable yokes. The magnetic flux is intentionally leaked to the movable yokes, allowing the magnetic field to be adjusted from 53 mT to 259 mT. The annulus sector-shaped electrodes with a wedge configuration provide better trace separation for high-energy ions, retain the lower-energy part of the ion signal, and subject ions passing through all pinholes to an equivalent Lorentz force. The magnetic and electric fields are designed for measuring protons and carbon ions with an energy range of 0.1-5 MeV. The spectrometer allows for the adjustment of the observable energy range afterward according to the parameters of the accelerated ion.Entities:
Year: 2020 PMID: 32486709 DOI: 10.1063/5.0005450
Source DB: PubMed Journal: Rev Sci Instrum ISSN: 0034-6748 Impact factor: 1.523