Role of carbon nanotube diameter on thermal interfacial resistance through the analysis of vibrational mismatch: A Molecular Dynamics approach
Ajinkya Sarode, Zeeshan Ahmed, Pratik Basarkar, Atul Bhargav, Debjyoti, Banerjee

TL;DR
This study uses molecular dynamics simulations to analyze how the diameter of carbon nanotubes affects interfacial thermal resistance with water, revealing larger diameters increase resistance due to vibrational mismatch.
Contribution
It provides new insights into the impact of CNT diameter on interfacial thermal resistance through vibrational spectrum analysis, a topic previously underexplored.
Findings
Larger diameter CNTs exhibit higher interfacial thermal resistance.
Vibrational mismatch increases with CNT diameter, reducing heat transfer efficiency.
Smaller diameter CNTs facilitate better heat transfer at the interface.
Abstract
Carbon nanotube (CNT) have been known to increase the heat transfer at the solid-liquid interfaces, but have a limitation due to the interfacial thermal resistance. Vibrational mismatch at the interface leads to this interfacial thermal resistance, which plays an important role in energy transfer at the boundary. Negligible work has been reported on the influence of CNT diameter on the resistance through the vibrational mismatch study. Molecular dynamics simulations have been performed to investigate the effect of CNT diameter on interfacial resistance between carbon nanotube (CNT) and water molecules. This work is an effort to understand the heat transfer phenomenon at the interface by quantifying the vibrational mismatch. Analysis of the vibrational spectra of CNT and water molecules is done to study the effect of CNT diameter on interfacial resistance. Starting with the initial…
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Taxonomy
TopicsCarbon Nanotubes in Composites · Thermal properties of materials · Nanopore and Nanochannel Transport Studies
