液体闪烁法测定natTi(d,x)49V激发函数

IF 1.4 3区 物理与天体物理 Q3 INSTRUMENTS & INSTRUMENTATION
C.R. Kleinfeldt , V.S. Bodnar , S.D. Essenmacher , A.M. Miller , G.M. Brown , G.F. Peaslee , G.W. Severin
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引用次数: 0

摘要

用叠片法测量了天然钛上氘核诱导核反应的实验截面。氘核束由Pelletron串联加速器提供,入射能量高达8兆电子伏。通过液相闪烁分析确定了49V产生的截面,在5.59(9)MeV时测得的最高值为522(32)mb。此外,利用伽马射线能谱对44m、46,47,48sc和48V的生产截面进行了评估,并与一些现有文献进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of the natTi(d,x)49V excitation function by liquid scintillation analysis
The experimental cross-sections for deuteron-induced nuclear reactions on natural titanium were measured using the stacked-foil method. Deuteron beams were provided by a Pelletron tandem accelerator at incident energies up to 8 MeV. The cross-sections for the production of 49V were determined by liquid scintillation analysis, with the highest measured value of 522(32) mb occurring at 5.59(9) MeV. Additionally, the cross-sections for the production of 44m,46,47,48Sc and 48V were evaluated using gamma-ray spectroscopy and compared to some available literature.
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来源期刊
CiteScore
2.80
自引率
7.70%
发文量
231
审稿时长
1.9 months
期刊介绍: Section B of Nuclear Instruments and Methods in Physics Research covers all aspects of the interaction of energetic beams with atoms, molecules and aggregate forms of matter. This includes ion beam analysis and ion beam modification of materials as well as basic data of importance for these studies. Topics of general interest include: atomic collisions in solids, particle channelling, all aspects of collision cascades, the modification of materials by energetic beams, ion implantation, irradiation - induced changes in materials, the physics and chemistry of beam interactions and the analysis of materials by all forms of energetic radiation. Modification by ion, laser and electron beams for the study of electronic materials, metals, ceramics, insulators, polymers and other important and new materials systems are included. Related studies, such as the application of ion beam analysis to biological, archaeological and geological samples as well as applications to solve problems in planetary science are also welcome. Energetic beams of interest include atomic and molecular ions, neutrons, positrons and muons, plasmas directed at surfaces, electron and photon beams, including laser treated surfaces and studies of solids by photon radiation from rotating anodes, synchrotrons, etc. In addition, the interaction between various forms of radiation and radiation-induced deposition processes are relevant.
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