Experimental Observation of Extremely Strong Defect-Phonon Scatterings in Semiconductor Single Crystals
Abstract
The role of doping in tailoring thermal transport in semiconductors is critical for efficient thermal management in electronic devices. While the effects of doping have been extensively studied to tune electrical properties, its impact on thermal transport has not yet been thoroughly explored, particularly with respect to experimental investigations into exceptionally strong non-Rayleigh defect-phonon scattering phenomena. Herein, by combining the high-quality growth and advanced characterizations of cubic silicon carbide single crystals with well controlled boron doping, we experimentally observe anomalous strong defect-phonon scatterings, among the strongest reported in common semiconductors, that exceeds the predictions of the classic mass difference model by tens of times in magnitude. The measured thermal conductivity of doped 3C SiC match excellently with those predicted by first principle calculations in which resonant scattering of low frequency phonon is considered. Our findings not only shed light on the fundamental understanding of defect-phonon interactions and will also impact applications such as thermal management of electronics.
Keywords
Cite
@article{arxiv.2504.20820,
title = {Experimental Observation of Extremely Strong Defect-Phonon Scatterings in Semiconductor Single Crystals},
author = {Zifeng Huang and Jianbo Liang and Yuxiang Wang and Zixuan Sun and Naoteru Shigekawa and Ming Li and Runsheng Wang and Zhe Cheng},
journal= {arXiv preprint arXiv:2504.20820},
year = {2025}
}