论文标题
电子晶体中塑性变形的流体动力学
Hydrodynamics of plastic deformations in electronic crystals
论文作者
论文摘要
我们构建了一个新的流体动力框架,描述了电子晶体中的塑性变形。该框架解释了由于翻译障碍而引起的固定,相位和动量放松效应,由于存在间质和空缺而导致的扩散以及由于可塑性和脱位而引起的应变松弛。我们获得了各种方案中的流体动力模式谱和相关函数,以识别电子晶体相间的可塑性。特别是,我们表明,位错的扩散脱离了空间分辨的电导率,直到晶体融化为止,此后出现了固定电子液体的新阶段。此外,模式频谱在固定和可塑性效应之间表现出竞争,某些模式的阻尼速率通过固定诱导的相弛豫控制,并且通过可塑性诱导的应变弛豫来控制。我们发现,即使在存在可塑性和脱位的情况下,最近发现的阻尼衰减关系仍然可以固定在固定的诱导的相弛豫中。我们还评论各种可以探测可塑性影响的实验设置。此处开发的框架适用于大型物理系统,包括电子Wigner晶体,多组分电荷密度波和普通晶体。
We construct a new hydrodynamic framework describing plastic deformations in electronic crystals. The framework accounts for pinning, phase, and momentum relaxation effects due to translational disorder, diffusion due to the presence of interstitials and vacancies, and strain relaxation due to plasticity and dislocations. We obtain the hydrodynamic mode spectrum and correlation functions in various regimes in order to identify the signatures of plasticity in electronic crystal phases. In particular, we show that proliferation of dislocations de-pins the spatially resolved conductivity until the crystal melts, after which point a new phase of a pinned electronic liquid emerges. In addition, the mode spectrum exhibits a competition between pinning and plasticity effects, with the damping rate of some modes being controlled by pinning-induced phase relaxation and some by plasticity-induced strain relaxation. We find that the recently discovered damping-attenuation relation continues to hold for pinned-induced phase relaxation even in the presence of plasticity and dislocations. We also comment on various experimental setups that could probe the effects of plasticity. The framework developed here is applicable to a large class of physical systems including electronic Wigner crystals, multicomponent charge density waves, and ordinary crystals.