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Enhancing phonon thermal conductivity in the semiconducting electride Sc2C via interstitial lattice electrons.

Created on 03 Aug 2026

Authors

Yishuo Wu, Xiangchuan Chen, Zhen Tong

Published in

Physical chemistry chemical physics : PCCP. Aug 03, 2026. Epub Aug 03, 2026.

Abstract

Sc2C is a recently synthesized novel semiconducting electride characterized by electrons residing in well-defined interstitial lattice sites rather than being localized within atoms. While extensive research has been carried out to explore its novel properties, such as reversible, high-capacity hydrogen storage and electrochemical storage, existing literature lacks a precise characterization of its electronic states and thermal transport mechanism, which is a critical prerequisite for a comprehensive understanding of its electronic properties. In this work, we investigate the phonon thermal conductivity (κ) of Sc2C by incorporating the Hubbard U correction to accurately describe its electronic structure using first-principles calculations and the linearized Boltzmann transport equation. We find that the Hubbard U correction significantly enhances κ compared to calculations performed without it. Moreover, we unveil a key competition mechanism: while the Hubbard U correction slightly suppresses four-phonon (4ph) lifetime, it drastically increases the three-phonon (3ph) lifetime. The competition between 3ph and 4ph scattering ultimately leads to the enhanced thermal conductivity. Additionally, the in-plane κ exhibits high sensitivity to boundary scattering at length scales below 200 nm. This work clarifies the role of electronic correlation in modulating the thermal transport properties of electride-based nanodevices.

PMID:
42544463
Bibliographic data and abstract were imported from PubMed on 03 Aug 2026.

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