Thermal boundary conductance of CVD-grown MoS monolayer-on-silica substrate determined by scanning thermal microscopy
arXiv:2207.14714 · doi:10.1063/5.0092553
Abstract
We characterize heat dissipation of supported molybdenum disulfide (MoS) monolayers grown by chemical vapor deposition by means of ambient-condition scanning thermal microscopy (SThM). We find that the thermal boundary conductance of the MoS monolayers in contact with 300 nm of SiO is around 4.6 2 MW m K. This value is in the low range of the values determined for exfoliated flakes with other techniques such as Raman thermometry, which span an order of magnitude (0.44-50 MW m K), and underlines the dispersion of measurements. The sensitivity to the in-plane thermal conductivity of supported MoS is very low, highlighting that the thermal boundary conductance is the key driver of heat dissipation for the MoS monolayer when it is not suspended. In addition, this work also demonstrates that SThM calibration using different thicknesses of SiO, initially aimed at being used with bulk materials can be extended to 2D materials.
References in corpus (6)
- Synthesis of Large-Area MoS2 Atomic Layers with Chemical Vapor Deposition
- Two-Dimensional Material Nanophotonics
- On the suitability of hBN as an insulator for 2D material-based ultrascaled CMOS devices
- Reduced Thermal Conductivity of Supported and Encased Monolayer and Bilayer MoS
- Gate-tunable emission of exciton-plasmon polaritons in hybrid MoS2-gap-mode metasurfaces
- Theoretical analysis of thermal boundary conductance of MoS2-SiO2 and WS2-SiO2 interface