Defect-induced phonon-resonant scattering and its influence on thermal transport of irradiated thorium-dioxide
Abstract
Thermal transport in proton irradiated thorium-dioxide (ThO2) is investigated. Using a combination of experiments and first-principles computational framework, the role of lattice defects on thermal conductivity is analyzed. A resonant-phonon scattering mechanism beyond the traditionally considered Rayleigh scattering is found to significantly influence low-temperature thermal transport in the presence of irradiation-induced point defects. The existence of localized phonon modes associated with irradiation-induced defects is suggested by the inability of the first-principles based thermal conductivity model—which considers only three-phonon interactions and phonon-defects scattering using the Tamura formalism—to predict the experimental results, unless a resonant scattering mechanism is included. The emergence of additional peaks in the Raman spectra in the proximity of phonon-resonant frequency provides further evidence for the existence of localized modes. Coupled with a microstructure evolution model, this analysis enables more accurate analysis for contrasting the contributions of different phonon scattering mechanisms across all irradiation doses and temperatures.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (11)
Saqeeb Adnan
Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,
Amey R. Khanolkar
Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,
Zilong Hua
Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,
Md Minaruzzaman
Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,
Mutaz Alshannaq
Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,
Joshua Ferrigno
Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,
Timothy A. Prusnick
KBR 3 , 2601 Mission Point Boulevard, Suite 300, Dayton, Ohio 45431,
Miaomiao Jin
Department of Nuclear Engineering, The Pennsylvania State University 3 , University Park, Pennsylvania 16802,
J. Matthew Mann
Air Force Research Laboratory 5 , Sensors Directorate, 2241 Avionics Circle, WPAFB, Dayton, Ohio 45433,
David H. Hurley
Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,
Marat Khafizov
Department of Mechanical and Aerospace Engineering, The Ohio State University 3 , Columbus, Ohio 43210,