Department of Physics, Emory University, Atlanta, Georgia 30322, USA.
James Franck Institute, Enrico Fermi Institute, and Department of Physics, The University of Chicago, Chicago, Illinois 60637, USA.
Phys Rev E. 2016 Mar;93(3):032905. doi: 10.1103/PhysRevE.93.032905. Epub 2016 Mar 25.
Glasses display a wide array of nonlinear acoustic phenomena at temperatures T ≲ 1 K. This behavior has traditionally been explained by an ensemble of weakly coupled, two-level tunneling states, a theory that is also used to describe the thermodynamic properties of glasses at low temperatures. One of the most striking acoustic signatures in this regime is the existence of phonon echoes, a feature that has been associated with two-level systems with the same formalism as spin echoes in NMR. Here we report the existence of a distinctly different type of acoustic echo in classical models of glassy materials. Our simulations consist of finite-ranged, repulsive spheres and also particles with attractive forces using Lennard-Jones interactions. We show that these echoes are due to anharmonic, weakly coupled vibrational modes and perhaps provide an alternative explanation for the phonon echoes observed in glasses at low temperatures.
在温度 T≲1K 下,玻璃表现出广泛的非线性声学现象。这种行为传统上可以用一组弱耦合的双能级隧道态来解释,该理论也被用来描述低温下玻璃的热力学性质。在这个范围内最显著的声学特征之一是声子回波的存在,这一特征与具有相同形式的双能级系统与 NMR 中的自旋回波相关联。在这里,我们报告了在玻璃状材料的经典模型中存在一种明显不同类型的声学回波。我们的模拟由有限范围的、排斥性的球体以及使用 Lennard-Jones 相互作用的具有吸引力的粒子组成。我们表明,这些回波是由于非谐的、弱耦合的振动模式,并且可能为低温下在玻璃中观察到的声子回波提供了另一种解释。