Anisotropy of radiation damage and dislocation damping in Cu
- 1 January 1973
- journal article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 44 (1) , 20-24
- https://doi.org/10.1063/1.1661861
Abstract
Cu single-crystal cubes have been γ irradiated in the [001] and [11̄0] directions, and the ultrasonic attenuation due to dislocation damping has been determined in the [110] direction after the various irradiation treatments. Fricke dosimetry indicates that about 10% less secondary electron energy exits the crystal in the [11̄0] irradiation than in the [001] irradiation. The fact that more energy is absorbed in the [11̄0] irradiation is consistent with the dislocation damping studies which indicate that more dislocation-pinning point defects are created in this case. The damping data obey the Granato-Lücke damping theory, and quantitative predictions as to the dislocation loop length and number of pinners created during irradiation are made on the basis of the theory. The anisotropy in radiation damage is consistent with theoretical predictions of anisotropy of replacement energy and focusing energy in Cu.This publication has 7 references indexed in Scilit:
- Anisotropy of the Threshold Energy for the Production of Frenkel Pairs in TantalumPhysical Review B, 1972
- Directional Effects in Electron Irradiated Cu Single CrystalsPhysica Status Solidi (b), 1965
- Displacement Threshold Energy and Focuson‐Impurity Interaction in Copper near 10 °KPhysica Status Solidi (b), 1964
- Overdamped resonance of dislocations in copperActa Metallurgica, 1962
- Dynamics of Radiation DamagePhysical Review B, 1960
- Focusing in Collision Problems in SolidsJournal of Applied Physics, 1957
- Theory of Mechanical Damping Due to DislocationsJournal of Applied Physics, 1956