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Updated: Apr 26, 2026

Fabrication and Optimization of Type II Silicon Clathrate Films
Published on: October 14, 2025
Thermal properties of amorphous/crystalline silicon superlattices
Arthur France-Lanord1, Samy Merabia, Tristan Albaret
1Université de Lorraine, LEMTA, CNRS-UMR7563, Faculté des Sciences et Technologies, BP 70239, 54506 Vandoeuvre-les-Nancy Cedex, France. Materials Design SARL, 92120 Montrouge, France. CEA, DSM-IRAMIS-SPEC, Saclay, 91191 Gif-sur-Yvette Cedex, France.
Abstract:
Thermal transport properties of crystalline/amorphous silicon superlattices using molecular dynamics are investigated. We show that the cross-plane conductivity of the superlattices is very low and close to the conductivity of bulk amorphous silicon even for amorphous layers as thin as ≃ 6 Å. The cross-plane thermal conductivity weakly increases with temperature which is associated with a decrease of the Kapitza resistance with temperature at the crystalline/amorphous interface. This property is further investigated considering the spatial analysis of the phonon density of states in domains close to the interface. Interestingly, the crystalline/amorphous superlattices are shown to display large thermal anisotropy, according to the characteristic sizes of elaborated structures. These last results suggest that the thermal conductivity of crystalline/amorphous superlattices can be phonon engineered, providing new directions for nanostructured thermoelectrics and anisotropic materials in thermal transport.
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