Login / Signup

Impact of Porosity and Boundary Scattering on Thermal Transport in Diameter-Modulated Nanowires.

Abhinav MalhotraGozde TutuncuogluSampath KommandurPatrick CreamerAravindh RajanAmar MohabirShannon K YeeMichael A FillerMartin Maldovan
Published in: ACS applied materials & interfaces (2021)
We study the thermal conductivity of diameter-modulated Si nanowires to understand the impact of different nanoscale transport mechanisms as a function of nanowire morphology. Our investigation couples transient suspended microbridge measurements of diameter-modulated Si nanowires synthesized via vapor-liquid-solid growth and dopant-selective etching with predictive Boltzmann transport modeling. We show that the presence of a low thermal conductivity phase (i.e., porosity) dominates the reduction in effective thermal conductivity and is supplemented by increased phonon-boundary scattering. The relative contributions of both mechanisms depend on the details of the nanoscale morphology. Our findings provide valuable insights into the factors that govern thermal conduction in complex nanoscale materials.
Keyphrases
  • room temperature
  • optic nerve
  • atomic force microscopy
  • ionic liquid
  • mass spectrometry
  • gold nanoparticles
  • optical coherence tomography
  • subarachnoid hemorrhage
  • blood brain barrier
  • cerebral ischemia
  • high speed