Sputtering Yield of Noble Gas Irradiation onto Tungsten Surface

Article Properties
  • Language
    English
  • Publication Date
    2016/01/01
  • Indian UGC (journal)
  • Refrences
    8
  • Citations
    3
  • Hiroaki Nakamura Department of Helical Plasma Research, National Institute for Fusion ScienceDepartment of Energy Engineering and Science, Nagoya University
  • Seiki Saito Department of Electrical Engineering, National Institute of Technology, Kushiro College
  • Atsushi M. Ito Department of Helical Plasma Research, National Institute for Fusion Science
Cite
Nakamura, Hiroaki, et al. “Sputtering Yield of Noble Gas Irradiation onto Tungsten Surface”. Journal of Advanced Simulation in Science and Engineering, vol. 3, no. 2, 2016, pp. 165-72, https://doi.org/10.15748/jasse.3.165.
Nakamura, H., Saito, S., & Ito, A. M. (2016). Sputtering Yield of Noble Gas Irradiation onto Tungsten Surface. Journal of Advanced Simulation in Science and Engineering, 3(2), 165-172. https://doi.org/10.15748/jasse.3.165
Nakamura, Hiroaki, Seiki Saito, and Atsushi M. Ito. “Sputtering Yield of Noble Gas Irradiation onto Tungsten Surface”. Journal of Advanced Simulation in Science and Engineering 3, no. 2 (2016): 165-72. https://doi.org/10.15748/jasse.3.165.
Nakamura H, Saito S, Ito AM. Sputtering Yield of Noble Gas Irradiation onto Tungsten Surface. Journal of Advanced Simulation in Science and Engineering. 2016;3(2):165-72.
Journal Category
Technology
Engineering (General)
Civil engineering (General)
Refrences
Title Journal Journal Categories Citations Publication Date
Binary-collision-approximation-based simulation of noble gas irradiation to tungsten materials Journal of Nuclear Materials
  • Science: Chemistry
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Nuclear engineering. Atomic power
  • Technology: Electrical engineering. Electronics. Nuclear engineering
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
22 2013
How to Combine Binary Collision Approximation and Multi-Body Potential for Molecular Dynamics Progress in Nuclear Science and Technology 9 2011
10.7567/JJAP.50.01AB03
Sputtering properties of tungsten ‘fuzzy’ surfaces Journal of Nuclear Materials
  • Science: Chemistry
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Nuclear engineering. Atomic power
  • Technology: Electrical engineering. Electronics. Nuclear engineering
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
144 2011
10.7567/JJAP.50.08JG01
Citations
Title Journal Journal Categories Citations Publication Date
Comparative study regarding the sputtering yield of nanocolumnar tungsten surfaces under Ar+ irradiation Physical Review Materials
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Science: Chemistry
2022
Sputtering of Tungsten by Beryllium and Neon Ions Technical Physics Letters
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Science: Physics
  • Science: Physics
2020
Effect of polycrystalline structure on helium plasma irradiation of tungsten materials Japanese Journal of Applied Physics
  • Science: Chemistry: Physical and theoretical chemistry
  • Science: Physics
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Science: Physics
2017
Citations Analysis
The category Technology: Chemical technology 3 is the most commonly referenced area in studies that cite this article. The first research to cite this article was titled Effect of polycrystalline structure on helium plasma irradiation of tungsten materials and was published in 2017. The most recent citation comes from a 2022 study titled Comparative study regarding the sputtering yield of nanocolumnar tungsten surfaces under Ar+ irradiation. This article reached its peak citation in 2022, with 1 citations. It has been cited in 3 different journals. Among related journals, the Physical Review Materials cited this research the most, with 1 citations. The chart below illustrates the annual citation trends for this article.
Citations used this article by year