Including wave-like phonon tunneling via the Wigner transport equation quantitatively reproduces measured thermal conductivities of naphthalene and pentacene and explains their weak temperature dependence.
Strong anharmonicity dictates ultralow thermal conductivities of type-I clathrates
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abstract
Type-I clathrate solids have attracted significant interest due to their ultralow thermal conductivities and subsequent promise for thermoelectric applications, yet the mechanisms underlying these properties are not well understood. Here, we extend the framework of vibrational dynamical mean-field theory (VDMFT) to calculate temperature-dependent thermal transport properties of $X_8$Ga$_{16}$Ge$_{30}$, where $X=$ Ba, Sr, using a many-body Green's function approach. We find that nonresonant scattering between cage acoustic modes and rattling modes leads to a reduction of acoustic phonon lifetimes and thus thermal conductivities. Moreover, we find that the moderate temperature dependence of conductivities above 300 K, which is consistent with experimental measurements, cannot be reproduced by standard perturbation theory calculations, which predict a $T^{-1}$ dependence. Therefore, we conclude that nonperturbative anharmonic effects, including four- and higher-phonon scattering processes, are responsible for the ultralow thermal conductivities of type-I clathrates.
fields
cond-mat.mtrl-sci 1years
2024 1verdicts
CONDITIONAL 1representative citing papers
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Heat transport in crystalline organic semiconductors: coexistence of phonon propagation and tunneling
Including wave-like phonon tunneling via the Wigner transport equation quantitatively reproduces measured thermal conductivities of naphthalene and pentacene and explains their weak temperature dependence.