Anomalous grain dynamics and grain locomotion of odd crystals

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Zhi-Feng Huang, Michael te Vrugt, Raphael Wittkowski, Hartmut Löwen
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Abstract

Crystalline or polycrystalline systems governed by odd elastic responses are known to exhibit complex dynamical behaviors involving self-propelled dynamics of topological defects with spontaneous self-rotation of chiral crystallites. Unveiling and controlling the underlying mechanisms require studies across multiple scales. We develop such a type of approach that bridges between microscopic and mesoscopic scales, in the form of a phase field crystal model incorporating transverse interactions. This continuum density field theory features two-dimensional parity symmetry breaking and odd elasticity, and generates a variety of interesting phenomena that agree well with recent experiments and particle-based simulations of active and living chiral crystals, including self-rotating crystallites, dislocation self-propulsion and proliferation, and fragmentation in polycrystals. We identify a distinct type of surface cusp instability induced by self-generated surface odd stress that results in self-fission of single-crystalline grains. This mechanism is pivotal for the occurrence of various anomalous grain dynamics for odd crystals, particularly the predictions of a transition from normal to reverse Ostwald ripening for self-rotating odd grains, and a transition from grain coarsening to grain self-fragmentation in the dynamical polycrystalline state with an increase of transverse interaction strength. We also demonstrate that the single-grain dynamics can be maneuvered through the variation of interparticle transverse interactions. This allows to steer the desired pathway of grain locomotion and to control the transition between grain self-rotation, self-rolling, and self-translation. Our results provide insights for the design and control of structural and dynamical properties of active odd elastic materials.
奇晶的异常晶粒动力学和晶粒运动
已知由奇弹性响应控制的晶体或多晶系统表现出复杂的动力学行为,包括具有手性晶体自发自旋的拓扑缺陷的自推进动力学。揭示和控制潜在的机制需要跨多个尺度的研究。我们开发了这样一种方法,在微观和介观尺度之间架起桥梁,以结合横向相互作用的相场晶体模型的形式。这种连续介质密度场理论具有二维奇偶对称性破缺和奇弹性的特点,并产生了各种有趣的现象,这些现象与最近的实验和基于粒子的活性和活性手性晶体的模拟非常吻合,包括自旋转晶体、位错自推进和增殖,以及多晶体中的破碎。我们发现了一种独特类型的表面尖不稳定性,由自产生的表面奇应力引起,导致单晶颗粒的自裂变。这一机制对于奇晶中各种异常晶粒动力学的发生是至关重要的,特别是对于自旋转奇晶从正向反向奥斯特瓦尔德成熟的转变,以及随着横向相互作用强度的增加,动态多晶态中晶粒从粗化到自破碎的转变的预测。我们还证明了单粒动力学可以通过粒子间横向相互作用的变化来操纵。这样就可以引导所需的颗粒运动路径,并控制颗粒自旋转,自滚动和自平移之间的过渡。我们的研究结果为活性奇弹性材料的结构和动力性能的设计和控制提供了见解。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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