Szulc Asaf, Mungan Muhittin, Regev Ido
Department of Physics, Ben-Gurion University of the Negev, Beer-Sheva 84105, Israel.
Institut für Angewandte Mathematik, Universität Bonn, Endenicher Allee 60, 53115 Bonn, Germany.
J Chem Phys. 2022 Apr 28;156(16):164506. doi: 10.1063/5.0087164.
When subject to cyclic forcing, amorphous solids can reach periodic, repetitive states, where the system behaves plastically, but the particles return to their initial positions after one or more forcing cycles, where the latter response is called multi-periodic. It is known that plasticity in amorphous materials is mediated by local rearrangements called "soft spots" or "shear transformation zones." Experiments and simulations indicate that soft spots can be modeled as hysteretic two-state entities interacting via quadrupolar displacement fields generated when they switch states and that these interactions can give rise to multi-periodic behavior. However, how interactions facilitate multi-periodicity is unknown. Here, we show, using a model of random interacting two-state systems and molecular dynamics simulations, that multi-periodicity arises from oscillations in the magnitudes of the switching field of soft spots, which cause soft spots to be active during some forcing cycles and idle during others. We demonstrate that these oscillations result from cooperative effects facilitated by the frustrated interactions between the soft spots. The presence of such mechanisms has implications for manipulating memory in frustrated hysteretic systems.
当受到循环外力作用时,非晶态固体可以达到周期性的重复状态,在这种状态下,系统表现出塑性,但在一个或多个外力循环后,粒子会回到其初始位置,后一种响应被称为多周期的。已知非晶材料中的塑性是由称为“软点”或“剪切转变区”的局部重排介导的。实验和模拟表明,软点可以被建模为通过状态切换时产生的四极位移场相互作用的滞后两态实体,并且这些相互作用可以导致多周期行为。然而,相互作用如何促进多周期性尚不清楚。在这里,我们使用随机相互作用两态系统模型和分子动力学模拟表明,多周期性源于软点切换场大小的振荡,这导致软点在某些外力循环中处于活跃状态,而在其他循环中处于闲置状态。我们证明这些振荡是由软点之间受挫相互作用促进的协同效应导致的。这种机制的存在对在受挫滞后系统中操纵记忆具有重要意义。