Quantitative measurement of the thermal contact resistance between a glass microsphere and a plate
Abstract
Accurate measurements of the thermal resistance between micro-objects made of insulating materials are complex because of their small size, low conductivity, and the presence of various ill-defined gaps. We address this issue using a modified scanning thermal microscope operating in vacuum and in air. The sphere-plate geometry is considered. Under controlled heating power, we measure the temperature on top of a glass microsphere glued to the probe as it approaches a glass plate at room temperature with nanometer accuracy. In vacuum, a jump is observed at contact. From this jump in temperature and the modeling of the thermal resistance of a sphere, the sphere-plate contact resistance and effective radius nm are obtained. In air, the temperature on top of the sphere shows a decrease starting from a sphere-plate distance of 200 . A jump is also observed at contact, with a reduced amplitude. The sphere-plate coupling out of contact can be described by the resistance shape factor of a sphere in front of a plate in air, placed in a circuit involving a series and a parallel resistance that are determined by fitting the approach curve. The contact resistance in air is then estimated from the temperature jump. The method is quantitative without requiring any tedious multiple-scale numerical simulation, and is versatile to describe the coupling between micro-objects from large distances to contact in various environments.
Keywords
Cite
@article{arxiv.2012.04291,
title = {Quantitative measurement of the thermal contact resistance between a glass microsphere and a plate},
author = {Joris Doumouro and Elodie Perros and Alix Dodu and Nancy Rahbany and Dominique Leprat and Valentina Krachmalnicoff and Rémi Carminati and Wilfrid Poirier and Yannick De Wilde},
journal= {arXiv preprint arXiv:2012.04291},
year = {2021}
}
Comments
8 pages, 4 figures