Quantum mechanical prediction of four-phonon scattering rates and reduced thermal conductivity of solids
Tianli Feng, Xiulin Ruan

TL;DR
This paper develops a quantum mechanical formalism to explicitly calculate four-phonon scattering rates, revealing their significant impact on reducing thermal conductivity in solids at various temperatures.
Contribution
It introduces a new formalism for directly computing four-phonon scattering rates across the full Brillouin Zone, addressing a longstanding computational challenge.
Findings
Four-phonon scattering rates are comparable to three-phonon rates at high temperatures.
Including four-phonon scattering reduces thermal conductivity by over 60% in Lennard-Jones argon at 80 K.
Four-phonon processes significantly affect optical phonon thermal conductivity even at low temperatures.
Abstract
Recently, first principle-based prediction of lattice thermal conductivity from the perturbation theory has achieved significant success. However, it only includes three-phonon scattering due to the assumption that four-phonon and higher-order processes are generally unimportant. Also, directly evaluating the scattering rates of four-phonon and higher-order processes has been a long-standing challenge. In this work, however, we have developed a formalism to explicitly determine quantum mechanical scattering probability matrices for four-phonon scattering in the full Brillouin Zone, and by mitigating the computational challenge we have directly calculated four-phonon scattering rates. We find that four-phonon scattering rates are comparable to three-phonon scattering rates at medium and high temperatures, and they increase quadratically with temperature. As a consequence,…
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