The Journal of Physical Chemistry Letters· 2026Q1
Anisotropic In-Plane Thermal Conductivity of Freestanding Few-Layer ReS2
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- 2026year
Short summary
Freestanding few-layer ReS2 (thickness <10 nm) exhibits anisotropic in-plane thermal conductivity, with AA-stacked flakes showing higher conductivity than AB-stacked flakes of the same thickness (~3.5 nm).
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Key points
- Freestanding few-layer ReS2 (<10 nm) shows anisotropic in-plane thermal conductivity.
- AA-stacked ReS2 (~3.5 nm) has higher thermal conductivity than AB-stacked ReS2 of the same thickness.
- In-plane thermal conductivity varies nonmonotonically with thickness (2.5-8 nm).
- Density functional theory calculations support the observed thickness dependence.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract ReS2 is a low-symmetry transition-metal dichalcogenide exhibiting strong in-plane anisotropy, weak interlayer coupling, and stacking-dependent physical properties. While anisotropic thermal conductivity has been reported in bulk ReS2, experimental studies on stacking-dependent thermal conductivity and its thickness evolution in the few-layer regime remain largely unexplored. Here, we extract the thermal conductivity of freestanding, few-layer ReS2 samples (thickness <10 nm) using polarization-resolved optothermal Raman thermometry. All ReS2 samples show pronounced in-plane anisotropic thermal conductivity. Notably, the ∼3.5 nm AA-stacked flake shows higher thermal conductivity than the AB-stacked flake of the same thickness, highlighting the influence of stacking order on phonon transport. The in-plane thermal conductivity displays a nonmonotonic dependence on thickness over the ∼2.5–8 nm range, which is supported by density functional theory calculations. These findings provide key insight into anisotropic phonon transport in low-symmetry 2D materials and highlight the potential of few-layer ReS2 for nanoscale thermal management and thermoelectric applications.
The authors' abstract, as published at the source. The Journal of Physical Chemistry Letters, 2026 · DOI ↗
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Field: Materials Chemistry
Materials ChemistryMaterials Science