Thermal conductivity of Bi$_2$Se$_3$ from bulk to thin films: theory and experiment
Lorenzo Paulatto, Dani\`ele Fournier, Massimiliano Marangolo, Mahmoud, Eddrief, Paola Atkinson, Matteo Calandra

TL;DR
This study combines theoretical calculations and experimental measurements to analyze the lattice thermal conductivity of Bi$_2$Se$_3$ from bulk to thin films, highlighting the impact of sample thickness on heat transport.
Contribution
It provides a comprehensive theoretical and experimental analysis of Bi$_2$Se$_3$ thermal conductivity across different thicknesses, including new measurements and modeling of surface scattering effects.
Findings
Thermal conductivity decreases with reducing film thickness.
Theoretical calculations agree with experimental data.
Surface scattering explains the reduction in out-of-plane thermal conductivity.
Abstract
We calculate the lattice-driven in-plane and out-of-plane thermal conductivities of BiSe bulk, and of films of different thicknesses, using the Boltzmann equation with phonon scattering times obtained from anharmonic third order density functional perturbation theory. We compare our results for the lattice component of the thermal conductivity with published data for on bulk samples and with our room-temperature thermoreflectance measurements of on films of thickness (L) ranging from 18~nm to 191~nm, where the lattice component has been extracted via the Wiedemann-Franz law. Ab-initio theoretical calculations on bulk samples, including an effective model to account for finite sample thickness and defect scattering, compare favorably both for the bulk case (from literature) and thin films (new…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Physical and Chemical Molecular Interactions · Advanced Thermoelectric Materials and Devices
