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Updated: Jun 6, 2026

Resonance Raman Spectroscopy of Extreme Nanowires and Other 1D Systems
Published on: April 28, 2016
Quantitative heat dissipation characteristics in current-carrying GaN nanowires probed by combining scanning thermal
Afsoon Soudi1, Robert D Dawson, Yi Gu
1Department of Physics and Astronomy, Washington State University, Pullman, Washington 99164, United States.
Abstract:
Using an approach combining scanning thermal microscopy (SThM) and spatially revolved Raman spectroscopy, we have investigated quantitatively the heat dissipation characteristics in substrate-supported and suspended (with asymmetric type of contacts) current-carrying GaN nanowires with diameters of ∼40-60 nm, where the phonon confinement is expected to play an important role in thermal transport. In particular, this approach allows direct measurements of nanowire-substrate/electrode interface thermal resistances and the nanowire thermal conductivity. On the basis of these results, the nanowire-substrate thermal transfer was suggested to be the main heat dissipation route, counting for ∼80-93% of the total dissipated heat, whereas the nanowire-electrode interface plays a minor role. The relative significance of nanowire-substrate/electrode interfaces in dissipating heat was further demonstrated in suspended nanowire devices. The measured nanowire thermal conductivity (∼40-60 W/mK) is lower than that in bulk GaN, possibly due to the phonon confinement and boundary scattering effects. Besides providing quantitative insight into heat dissipation characteristics, our results also reveal aspects, particularly the topography-related thermal signals and the relative significance of various tip-sample thermal transfer processes, that are important to advancing the applications of SThM technique in nanoscale thermal characterizations.
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Quantifying Heat
Mechanism of heat transfer
Mechanisms of Heat Transfer
Conduction, accounting for approximately 3% of body heat loss at rest, is the process of exchanging heat between molecules of two materials in direct contact. This can result in both heat loss and gain. For instance, when the body is submerged in water, which conducts heat 20 times more effectively than air, it can either lose or gain significant heat.

