Testing the heterogeneous-elasticity theory for low-energy excitations in structural glasses.

IF 2.4 3区 物理与天体物理 Q1 Mathematics Physical review. E Pub Date : 2025-01-01 DOI:10.1103/PhysRevE.111.L013402
Edan Lerner, Eran Bouchbinder
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Abstract

Understanding the statistical mechanics of low-energy excitations in structural glasses has been the focus of extensive research efforts in the past decades due to their key roles in determining the low-temperature mechanical and transport properties of these intrinsically nonequilibrium materials. While it is established that glasses feature low-energy nonphononic excitations that follow a non-Debye vibrational density of states, we currently lack a well-founded theory of these fundamental objects and their vibrational spectra. A recent theory-that builds on the so-called heterogeneous-elasticity theory (HET) and its extensions-provides explicit predictions for the scaling of the low-frequency tail of the nonphononic spectrum of glasses, the localization properties of the vibrational modes that populate this tail, and its connections to glass formation history and to the form of the distribution of weak microscopic (interatomic) stresses. Here, we employ computer models of structural glasses to quantitatively test these predictions. Our findings do not support the HET's predictions regarding the nature and statistics of low-energy excitations in glasses, highlighting the need for additional theoretical developments.

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结构玻璃低能激发的非均质弹性理论检验。
在过去的几十年里,了解结构玻璃中低能激发的统计力学一直是广泛研究的焦点,因为它们在确定这些本质上不平衡的材料的低温力学和输运性质方面起着关键作用。虽然已经确定玻璃具有遵循非德拜振动密度状态的低能量非声子激发,但我们目前缺乏这些基本物体及其振动谱的良好基础理论。最近的一个理论——建立在所谓的非均质弹性理论(HET)及其扩展之上——对玻璃非声子谱的低频尾的尺度、振动模式的局部化特性、以及它与玻璃形成历史和弱微观(原子间)应力分布形式的联系提供了明确的预测。在这里,我们采用结构玻璃的计算机模型来定量测试这些预测。我们的发现不支持HET关于玻璃中低能激发的性质和统计的预测,突出了需要额外的理论发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physical review. E
Physical review. E 物理-物理:流体与等离子体
CiteScore
4.60
自引率
16.70%
发文量
0
审稿时长
3.3 months
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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