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通过软超离子晶体中的键合层次结构解耦超低相干和类粒子声子输运

Decoupling Ultralow Coherent and Particle-Like Phonon Transport via Bonding Hierarchy in Soft Superionic Crystals.

作者信息

Xiong Wenjie, Huang Hao, Wu Yu, Xu Xinji, Li Geng, Gu Zonglin, Zeng Shuming

机构信息

College of Physics Science and Technology, Yangzhou University, Jiangsu, 225009, China.

Advanced Copper Industry College, Jiangxi University of Science and Technology, Yingtan, 335000, China.

出版信息

Adv Sci (Weinh). 2025 Aug;12(31):e06807. doi: 10.1002/advs.202506807. Epub 2025 Jun 5.

Abstract

Within the unified theoretical framework for thermal transport, the inherent interplay between coherent tunneling and propagative phonon mechanisms establishes an antagonistic relationship, thereby imposing fundamental limitations on suppressing lattice thermal conductivity . In this work, it is theoretically demonstrate that the superionic crystals XReSI (X = Rb, Cs) exhibit ultralow glass-like and particle-like thermal conductivities. The weak interactions between free alkali metal ions X (X = Rb, Cs) and I anions induce pronounced lattice anharmonicity, which enhances phonon scattering and suppresses group velocities, thereby reducing the particle-like thermal conductivity ( ). Concurrently, the significant bonding heterogeneity within and between the [ReSI] clusters promotes phonon band flattening and low-frequency phonon localization. The resulting discretized phonon flat bands substantially diminish the glass-like thermal conductivity ( ). At room temperature, the total of XReSI (X = Rb, Cs) falls below 0.2 W m K. Furthermore, the bonding characteristics between X and I anions induce an anomalous cation mass-independent stiffening of low-frequency phonon branches in this system, resulting in counterintuitive thermal transport behavior. This work elucidates fundamental mechanisms governing heat transfer in ultralow materials and establishes novel pathways for transcending conventional thermal conductivity limitations.

摘要

在热输运的统一理论框架内,相干隧穿与传播声子机制之间固有的相互作用建立了一种对抗关系,从而对抑制晶格热导率施加了基本限制。在这项工作中,从理论上证明了超离子晶体XReSI(X = Rb、Cs)表现出超低的类玻璃态和类粒子态热导率。自由碱金属离子X(X = Rb、Cs)与I阴离子之间的弱相互作用会引起明显的晶格非谐性,这会增强声子散射并抑制群速度,从而降低类粒子态热导率( )。同时,[ReSI]团簇内部和之间显著的键合不均匀性促进了声子能带展宽和低频声子局域化。由此产生的离散声子平带极大地降低了类玻璃态热导率( )。在室温下,XReSI(X = Rb、Cs)的总 低于0.2 W m K。此外,X与I阴离子之间的键合特性在该系统中引起了低频声子分支的反常阳离子质量无关硬化,导致了违反直觉的热输运行为。这项工作阐明了超低 材料中热传递的基本机制,并建立了超越传统热导率限制的新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a0f0/12376585/392394476f70/ADVS-12-e06807-g007.jpg

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