论文标题
相互依存的超导网络
Interdependent Superconducting Networks
论文作者
论文摘要
级联反馈机制触发的自我扩增过程可能会导致宏观系统的大部分部分,以改变其相对较小的本地事件的反应。这些现象的理论背景与相互依存的网络具有丰富的跨学科,提供了一个多功能的“两次相互作用”框架来研究其多尺度演变。然而,旨在验证这种不断增长的预测量的物理实验仍然难以捉摸,迄今为止,由于识别实现相互依存联轴器的物理机制的问题而阻碍了。在这里,我们开发和研究了相互依存系统作为两个无序超导体的多层网络的第一个实验实现,该网络被绝缘膜分开。我们表明,在足够大的驾驶电流时出现的焦耳加热效应充当超导层之间的依赖性联系,从而通过来回的来回电力热反馈来点燃过热的级联反应。通过理论和实验,我们揭示了相互抵抗过渡和级联过程的丰富相图,这些过程在物理上实现并概括了相互依存的渗透。目前的工作为相互依赖系统理论的表现建立了第一个物理实验室基准,使实验研究能够控制并进一步发展复杂相互依存材料的多层现象。
Cascades are self-amplifying processes triggered by feedback mechanisms that may cause a substantial part of a macroscopic system to change its phase in response of a relatively small local event. The theoretical background for these phenomena is rich and interdisciplinary with interdependent networks providing a versatile "two-interactions" framework to study their multiscale evolution. Yet, physics experiments aimed at validating this ever-growing volume of predictions have remained elusive, hitherto hindered by the problem of identifying possible physical mechanisms realizing interdependent couplings. Here we develop and study the first experimental realization of an interdependent system as a multilayer network of two disordered superconductors separated by an insulating film. We show that Joule heating effects emerging at sufficiently large driving currents act as dependency links between the superconducting layers, igniting overheating cascades via adaptive back and forth electro-thermal feedbacks. Through theory and experiments, we unveil a rich phase diagram of mutual resistive transitions and cascading processes that physically realize and generalize interdependent percolation. The present work establishes the first physics laboratory bench for the manifestation of the theory of interdependent systems, enabling experimental studies to control and to further develop the multilayer phenomena of complex interdependent materials.