TY - JOUR
T1 - Effects of Localized Interface Phonons on Heat Conductivity in Ingredient Heterogeneous Solids
AU - Wu, Mei
AU - Shi, Ruochen
AU - Qi, Ruishi
AU - Li, Yuehui
AU - Feng, Tao
AU - Liu, Bingyao
AU - Yan, Jingyuan
AU - Li, Xiaomei
AU - Liu, Zhetong
AU - Wang, Tao
AU - Wei, Tongbo
AU - Liu, Zhiqiang
AU - Du, Jinlong
AU - Chen, Ji
AU - Gao, Peng
N1 - Publisher Copyright:
© 2023 Chinese Physical Society and IOP Publishing Ltd
PY - 2023/3/1
Y1 - 2023/3/1
N2 - Phonons are the primary heat carriers in non-metallic solids. In compositionally heterogeneous materials, the thermal properties are believed to be mainly governed by the disrupted phonon transport due to mass disorder and strain fluctuations, while the effects of compositional fluctuation induced local phonon states are usually ignored. Here, by scanning transmission electron microscopy electron energy loss spectroscopy and sophisticated calculations, we identify the vibrational properties of ingredient-dependent interface phonon modes in Al x Ga1 - x N and quantify their various contributions to the local interface thermal conductance. We demonstrate that atomic-scale compositional fluctuation has significant influence on the vibrational thermodynamic properties, highly affecting the mode ratio and vibrational amplitude of interface phonon modes and subsequently redistributing their modal contribution to the interface thermal conductance. Our work provides fundamental insights into understanding of local phonon-boundary interactions in nanoscale inhomogeneities, which reveal new opportunities for optimization of thermal properties via engineering ingredient distribution.
AB - Phonons are the primary heat carriers in non-metallic solids. In compositionally heterogeneous materials, the thermal properties are believed to be mainly governed by the disrupted phonon transport due to mass disorder and strain fluctuations, while the effects of compositional fluctuation induced local phonon states are usually ignored. Here, by scanning transmission electron microscopy electron energy loss spectroscopy and sophisticated calculations, we identify the vibrational properties of ingredient-dependent interface phonon modes in Al x Ga1 - x N and quantify their various contributions to the local interface thermal conductance. We demonstrate that atomic-scale compositional fluctuation has significant influence on the vibrational thermodynamic properties, highly affecting the mode ratio and vibrational amplitude of interface phonon modes and subsequently redistributing their modal contribution to the interface thermal conductance. Our work provides fundamental insights into understanding of local phonon-boundary interactions in nanoscale inhomogeneities, which reveal new opportunities for optimization of thermal properties via engineering ingredient distribution.
UR - https://www.scopus.com/pages/publications/85150481794
U2 - 10.1088/0256-307X/40/3/036801
DO - 10.1088/0256-307X/40/3/036801
M3 - 文章
AN - SCOPUS:85150481794
SN - 0256-307X
VL - 40
JO - Chinese Physics Letters
JF - Chinese Physics Letters
IS - 3
M1 - 036801
ER -