Published December 13, 2017 | Version v1
Journal article

A simplified model to estimate thermal resistance between carbon nanotube and sample in scanning thermal microscopy

  • 1. School of Engineering and Computing Sciences, Durham University, Durham DH1 3LE (United Kingdom)
  • 2. Department of Physics, Lancaster University, Lancaster LA1 4YB (United Kingdom)
  • 3. St Petersburg Academic University, Khlopina 8/3, 194021 St Petersburg (Russian Federation)

Description

Scanning thermal microscopy (SThM) is an attractive technique for nanoscale thermal measurements. Multiwalled carbon nanotubes (MWCNT) can be used to enhance a SThM probe in order to drastically increase spatial resolution while keeping required thermal sensitivity. However, an accurate prediction of the thermal resistance at the interface between the MWCNT-enhanced probe tip and a sample under study is essential for the accurate interpretation of experimental measurements. Unfortunately, there is very little literature on Kapitza interfacial resistance involving carbon nanotubes under SThM configuration. We propose a model for heat conductance through an interface between the MWCNT tip and the sample, which estimates the thermal resistance based on phonon and geometrical properties of the MWCNT and the sample, without neglecting the diamond-like carbon layer covering the MWCNT tip. The model considers acoustic phonons as the main heat carriers and account for their scattering at the interface based on a fundamental quantum mechanical approach. The predicted value of the thermal resistance is then compared with experimental data available in the literature. Theoretical predictions and experimental results are found to be of the same order of magnitude, suggesting a simplified, yet realistic model to approximate thermal resistance between carbon nanotube and sample in SThM, albeit low temperature measurements are needed to achieve a better match between theory and experiment. As a result, several possible avenues are outlined to achieve more accurate predictions and to generalize the model. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1361-6463/aa900e

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Physics. D, Applied Physics
Journal Volume
50
Journal Issue
49
Journal Page Range
[8 p.]
ISSN
0022-3727
CODEN
JPAPBE

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
52077029
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Descriptors DEI
CARBON NANOTUBES; DIAMONDS; QUANTUM MECHANICS; SPATIAL RESOLUTION
Descriptors DEC
CARBON; ELEMENTS; MECHANICS; MINERALS; NANOSTRUCTURES; NANOTUBES; NONMETALS; RESOLUTION