Effect of Stress on Irradiation Responses of Highly Oriented Pyrolytic Graphite. Academic Article uri icon

abstract

  • The effect of stress on irradiation responses of highly oriented pyrolytic graphite (HOPG) was studied by combing molecular dynamics (MD) simulation, proton irradiation, and Raman characterization. MD simulations of carbon knock-on at energies < 60 eV were used to obtain average threshold displacement energies (Ed) as a function of strain ranging from 0 to 10%. Simulations at a higher irradiation energy of 25 keV were used to study the effect of strain on damage cascade evolution. With increasing tensile strain, Ed was reduced from 35 eV at 0% strain to 31 eV at 10% strain. The strain-reduced Ed led to a higher damage peak and more surviving defects (up to 1 ps). Furthermore, high strains induced local cleavage around the cavities, as one additional mechanism of damage enhancement. Experimentally, HOPG film was folded, and the folded region with the maximum tensile stress was irradiated by a 2 MeV proton beam. Raman characterization showed significantly enhanced D to G modes in comparison to the stress-free irradiation. Based on the strain dependence of Ed and the KinchinPease model, a formula for displacement estimation under different tensile strains is proposed. The stress effects need to be considered in graphite applications in a reactors harsh environment where both neutron damage and stress are present.

published proceedings

  • Materials (Basel)

altmetric score

  • 0.25

author list (cited authors)

  • Hu, Z., Chen, D. i., Kim, S., Chauhan, R., Li, Y., & Shao, L.

citation count

  • 0

complete list of authors

  • Hu, Zhihan||Chen, Di||Kim, SeungSu||Chauhan, Rijul||Li, Yongchang||Shao, Lin

publication date

  • May 2022

publisher