Defect-induced phonon-resonant scattering and its influence on thermal transport of irradiated thorium-dioxide

S Saqeeb Adnan (Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,) A Amey R. Khanolkar (Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,) Z Zilong Hua (Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,) M Md Minaruzzaman (Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,) M Mutaz Alshannaq (Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,) J Joshua Ferrigno (Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,) T Timothy A. Prusnick (KBR 3 , 2601 Mission Point Boulevard, Suite 300, Dayton, Ohio 45431,) M Miaomiao Jin (Department of Nuclear Engineering, The Pennsylvania State University 3 , University Park, Pennsylvania 16802,) J J. Matthew Mann (Air Force Research Laboratory 5 , Sensors Directorate, 2241 Avionics Circle, WPAFB, Dayton, Ohio 45433,) D David H. Hurley (Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,) M Marat Khafizov (Department of Mechanical and Aerospace Engineering, The Ohio State University 3 , Columbus, Ohio 43210,)

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

Volume / Issue Vol. 138, Issue 13
Published October 07, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (11)

S

Saqeeb Adnan

Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,

A

Amey R. Khanolkar

Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,

Z

Zilong Hua

Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,

M

Md Minaruzzaman

Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,

M

Mutaz Alshannaq

Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,

J

Joshua Ferrigno

Department of Mechanical and Aerospace Engineering, The Ohio State University 1 , Columbus, Ohio 43210,

T

Timothy A. Prusnick

KBR 3 , 2601 Mission Point Boulevard, Suite 300, Dayton, Ohio 45431,

M

Miaomiao Jin

Department of Nuclear Engineering, The Pennsylvania State University 3 , University Park, Pennsylvania 16802,

J

J. Matthew Mann

Air Force Research Laboratory 5 , Sensors Directorate, 2241 Avionics Circle, WPAFB, Dayton, Ohio 45433,

D

David H. Hurley

Idaho National Laboratory 2 , Idaho Falls, Idaho 83415,

M

Marat Khafizov

Department of Mechanical and Aerospace Engineering, The Ohio State University 3 , Columbus, Ohio 43210,