Prediction of structure-dependent thermal transport behavior in self-folded graphene film validated by molecular dynamics simulation
Anran Wei, Fenglin Guo

TL;DR
This study develops an analytical model to predict how the microstructural geometry of self-folded graphene films influences their thermal transport properties, validated by molecular dynamics simulations and relevant for device applications.
Contribution
The paper introduces a new analytical model linking grafold geometry to thermal conductivity in self-folded graphene films, validated by simulations.
Findings
Thermal conductivity depends on grafold geometry.
Model predictions align with molecular dynamics simulations.
Stretching affects thermal transport in SF-GF.
Abstract
Understanding the relationship between the microstructures and overall properties is one of the basic concerns for the material design and applications. As a ubiquitous structural configuration in nature, the folded morphology is also widely observed in graphene-based nanomaterials, namely grafold. Recently, a self-folded graphene film (SF-GF) material has been successfully fabricated by the assembly of grafolds and exhibits promising applications in thermal management. However, the dependence of thermal properties of SF-GF on the structural features of grafold has still remained unclear. We here develop an analytical model to describe the thermal transport behavior in SF-GF. Our model demonstrates the relationship between the geometry of grafolds and thermal properties of SF-GF. The predictions of temperature profile and thermal conductivity are well validated by molecular dynamics…
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