Electromechanical Origin of Phonon Dynamics Exhibiting Tunable Anisotropic Heat Transport in Layered Nanostructures

Author:

Kim Youngoh12ORCID,Choi Joonmyung12ORCID

Affiliation:

1. Department of Mechanical Design Engineering Hanyang University 222 Wangsimni‐ro, Seongdong‐gu Seoul 04763 Republic of Korea

2. Department of Mechanical Engineering, BK21 FOUR ERICA‐ACE Center Hanyang University 55 Hanyangdaehak‐ro, Sangnok‐gu Ansan 15588 Republic of Korea

Abstract

AbstractOwing to the structural characteristics of 2D layered nanomaterials, anisotropic thermal conductivity is considered an attractive design factor for constructing efficient heat‐transfer pathways. In this study, the electromechanical origin of anisotropic thermal conduction in Ti3C2O2M (M = Li, Na, K) is investigated at the atomic scale using theoretical multiscale analysis. The results demonstrate that the acoustic and optical phonon modes drive interlayer and intralayer heat conduction, respectively. Further, the lower the atomic number of the alkali ions intercalated in the Ti3C2O2 layer, the more immediately it responds to externally applied oscillations owing to its low inertia and high electrostatic force. The Li‐ion layer exhibits an instantaneous response to vibrational excitations from an external source, making it transparent to higher phonon modes under interlayer and intralayer thermal conduction. The electromechanical modulation properties of the ion layer are further elucidated, providing practical insights into the design of anisotropic thermal paths.

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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