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揭示玻璃中隐藏的粒子级缺陷。

Unveiling hidden particle-level defects in glasses.

作者信息

Hu Yuan-Chao, Tanaka Hajime

机构信息

Songshan Lake Materials Laboratory, Dongguan, 523808, China.

Research Center for Advanced Science and Technology, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, Japan.

出版信息

Nat Commun. 2025 Jun 17;16(1):5321. doi: 10.1038/s41467-025-60781-7.

Abstract

In crystals, defects are well-defined and crucial to their mechanical properties. In contrast, the structural disorder in glasses makes it challenging to directly identify defects at the particle level. However, low-frequency quasi-localised modes (QLMs) in glasses provide valuable insights, acting as mechanical defects associated with shear transformation zones and soft spots. Using molecular dynamics simulations of two-dimensional glasses, we identify a particle-level defect responsible for generating QLMs. The primary QLM originates from a "key-core" square of four particles vibrating in a two-in, two-out pattern, interpretable as a microscopic Eshelby inclusion. The motion of these particles induces nearby volumetric and far-field shear deformations, forming a characteristic four-leaf pattern. Despite the structural isotropy of the glass, these QLMs introduce notable mechanical anisotropy, particularly in nano-sized glasses. Crucially, pinning the key-core particles dramatically reduces shear modulus anisotropy, confirming their role as "localised particle-level defects." This discovery deepens our understanding of glass defects and offers valuable insights for nanoscale glass applications.

摘要

在晶体中,缺陷定义明确,对其力学性能至关重要。相比之下,玻璃中的结构无序使得在粒子层面直接识别缺陷具有挑战性。然而,玻璃中的低频准局域模(QLMs)提供了有价值的见解,它们作为与剪切转变区和软点相关的力学缺陷。通过二维玻璃的分子动力学模拟,我们识别出了一种负责产生QLMs的粒子层面缺陷。主要的QLM源自由四个粒子组成的“关键核心”正方形,它们以两进两出的模式振动,可解释为微观的埃舍尔比夹杂。这些粒子的运动引起附近的体积变形和远场剪切变形,形成特征性的四叶图案。尽管玻璃具有结构各向同性,但这些QLMs引入了显著的力学各向异性,特别是在纳米尺寸的玻璃中。至关重要的是,固定关键核心粒子会显著降低剪切模量各向异性,证实了它们作为“局域粒子层面缺陷”的作用。这一发现加深了我们对玻璃缺陷的理解,并为纳米级玻璃应用提供了有价值的见解。

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