论文标题
在模型金属玻璃中揭示低温快速松弛峰
Revealing the low-temperature fast relaxation peak in a model metallic glass
论文作者
论文摘要
通过系统地研究基于广泛的分子动力学(MD)模拟与动态机械光谱法结合的模型金属玻璃的松弛行为,在MD模拟中首次发现了损耗模谱的明显超低温度峰。发现关系峰在文献中报道的常规Beta关系峰的温度远低于典型的温度。根据原子位移分析,我们可以阐明可逆原子运动,而不是热振动或局部结构重排,主要导致这种放松峰。我们通过表征局部几何各向异性来进一步确定这种快速放松过程的原子水平机制。此外,通过追踪这些“可逆”原子的动态行为,我们演示了局部弛豫模式的内在层次结构,这些模式是由原子振动触发的,并逐渐发展为可逆和不可逆的原子运动。我们的发现阐明了金属眼镜中放松过程的一般图片。
By systematically investigating the relaxation behavior of a model metallic glass based on the extensive molecular dynamics (MD) simulations combined with the dynamic mechanical spectroscopy method, a pronounced ultra-low temperature peak on the loss modulus spectrum was discovered for the first time in MD simulations. It was found that the relation peak occurs at a much lower temperature than the typical temperature for the conventional beta relation peak as reported in the literature. According to the atomic displacement analysis, we unravel that the reversible atomic motions, rather than the thermal vibrations or local structural rearrangements, mainly contribute to this relaxation peak. We further identify the atomic level mechanism of this fast relaxation process by characterizing the local geometrical anisotropy. Furthermore, by tracing the dynamic behaviors of these "reversible" atoms, we demonstrate the intrinsic hierarchy of the local relaxation modes, which are triggered by atomic vibrations and gradually developed to the reversible and irreversible atomic movements. Our findings shed light on a general picture of the relaxation processes in metallic glasses.