Morse Peter K, Corwin Eric I
Department of Physics, Syracuse University, Syracuse, New York 13244, USA.
Department of Physics and Materials Science Institute, University of Oregon, Eugene, Oregon 97403, USA.
Phys Rev Lett. 2017 Sep 15;119(11):118003. doi: 10.1103/PhysRevLett.119.118003.
Recent theoretical advances have led to the creation of a unified phase diagram for the thermal glass and athermal jamming transitions. This diagram makes clear that, while related, the mode-coupling-or dynamic-glass transition is distinct from the jamming transition, occurring at a finite temperature and significantly lower density than the jamming transition. Nonetheless, we demonstrate a prejamming transition in athermal frictionless spheres which occurs at the same density as the mode-coupling transition and is marked by percolating clusters of locally rigid particles. At this density in both the thermal and athermal systems, individual motions of an extensive number of particles become constrained, such that only collective motion is possible. This transition, which is well below jamming, exactly matches the definition of collective behavior at the dynamical transition of glasses. Thus, we reveal that the genesis of rigidity in both thermal and athermal systems is governed by the same underlying topological transition in their shared configuration space.
最近的理论进展促成了热玻璃态和无热阻塞转变的统一相图的建立。该相图清楚地表明,虽然二者相关,但模式耦合或动态玻璃态转变与阻塞转变不同,它发生在有限温度下,且密度远低于阻塞转变。尽管如此,我们证明了在无热无摩擦球体中存在一种预阻塞转变,它发生在与模式耦合转变相同的密度下,并以局部刚性粒子的渗流团簇为标志。在热系统和无热系统的这个密度下,大量粒子的个体运动受到限制,以至于只能进行集体运动。这个远低于阻塞的转变,恰好符合玻璃态动力学转变时集体行为的定义。因此,我们揭示了热系统和无热系统中刚性的起源在它们共享的构型空间中受相同的潜在拓扑转变支配。