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MoS 2 phononic crystals for advanced thermal management.

Peng XiaoAlexandros El SachatEmigdio Chavez AngelRyan C NgGiorgos NikoulisJoseph KioseoglouKonstantinos TermentzidisClivia M Sotomayor TorresMarianna Sledzinska
Published in: Science advances (2024)
Effective thermal management of electronic devices encounters substantial challenges owing to the notable power densities involved. Here, we propose layered MoS 2 phononic crystals (PnCs) that can effectively reduce thermal conductivity (κ) with relatively small disruption of electrical conductivity (σ), offering a potential thermal management solution for nanoelectronics. These layered PnCs exhibit remarkable efficiency in reducing κ, surpassing that of Si and SiC PnCs with similar periodicity by ~100-fold. Specifically, in suspended MoS 2 PnCs, we measure an exceptionally low κ down to 0.1 watts per meter kelvin, below the amorphous limit while preserving the crystalline structure. These findings are supported by molecular dynamics simulations that account for the film thickness, porosity, and temperature. We demonstrate the approach efficiency by fabricating suspended heat-routing structures that effectively confine and guide heat flow in prespecified directions. This study underpins the immense potential of layered materials as directional heat spreaders, thermal insulators, and active components for thermoelectric devices.
Keyphrases
  • room temperature
  • reduced graphene oxide
  • molecular dynamics simulations
  • highly efficient
  • transition metal
  • heat stress
  • ionic liquid
  • quantum dots
  • gold nanoparticles
  • mass spectrometry
  • molecular docking
  • human health