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Thermal Properties of Nanocrystalline Silicon Nanobeams

Year of publication

2022

Authors

Maire, Jeremie; Chávez-Ángel, Emigdio; Arregui, Guillermo; Colombano, Martin F.; Capuj, Nestor E.; Griol, Amadeu; Martínez, Alejandro; Navarro-Urrios, Daniel; Ahopelto, Jouni; Sotomayor-Torres, Clivia M.

Abstract

<p>Controlling thermal energy transfer at the nanoscale and thermal properties has become critically important in many applications since it often limits device performance. In this study, the effects on thermal conductivity arising from the nanoscale structure of free-standing nanocrystalline silicon films and the increasing surface-to-volume ratio when fabricated into suspended optomechanical nanobeams are studied. Thermal transport and elucidate the relative impact of different grain size distributions and geometrical dimensions on thermal conductivity are characterized. A micro time-domain thermoreflectance method to study free-standing nanocrystalline silicon films and find a drastic reduction in the thermal conductivity, down to values below 10 W m<sup>–1</sup> K<sup>–1</sup> is used, with a stronger decrease for smaller grains. In optomechanical nanostructures, this effect is smaller than in membranes due to the competition of surface scattering in decreasing thermal conductivity. Finally, a novel versatile contactless characterization technique that can be adapted to any structure supporting a thermally shifted optical resonance is introduced. The thermal conductivity data agrees quantitatively with the thermoreflectance measurements. This study opens the way to a more generalized thermal characterization of optomechanical cavities and to create hot-spots with engineered shapes at the desired position in the structures as a means to study thermal transport in coupled photon-phonon structures.</p>
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Organizations and authors

Publication type

Publication format

Article

Parent publication type

Journal

Article type

Original article

Audience

Scientific

Peer-reviewed

Peer-Reviewed

MINEDU's publication type classification code

A1 Journal article (refereed), original research

Publication channel information

Volume

32

Issue

4

Article number

2105767

​Publication forum

50432

​Publication forum level

3

Open access

Open access in the publisher’s service

Yes

Open access of publication channel

Partially open publication channel

License of the publisher’s version

CC BY

Self-archived

No

Other information

Fields of science

Physical sciences; Chemical sciences; Materials engineering; Nanotechnology

Keywords

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Language

English

International co-publication

Yes

Co-publication with a company

No

DOI

10.1002/adfm.202105767

The publication is included in the Ministry of Education and Culture’s Publication data collection

Yes