论文标题
非转录相变
Non-reciprocal phase transitions
论文作者
论文摘要
出于平衡,缺乏互惠是规则而不是例外。例如,在神经元网络,界面的定向生长和合成活性材料的网络中发生了非转向性相互作用。虽然最近的非转录培养基中的波传播最近受到了激烈的研究,但对非股展对多体系统集体行为的后果的了解却少。在这里,我们表明非股展是导致时间依赖的阶段,在这种阶段中,自发损坏的对称性动态恢复。所得的相变由称为特殊点的光谱奇异性控制。我们使用分叉理论和非热量子力学的见解来描述这些阶段的出现。我们的方法捕获了三种原型自组织的非转换概括:同步,羊群和模式形成。这些非转录系统中的集体现象范围从主动时间(准)晶体到特殊的强制性模式形成和滞后。我们的工作铺平了迈向非近代物质中关键现象的一般理论的道路。
Out of equilibrium, the lack of reciprocity is the rule rather than the exception. Non-reciprocal interactions occur, for instance, in networks of neurons, directional growth of interfaces, and synthetic active materials. While wave propagation in non-reciprocal media has recently been under intense study, less is known about the consequences of non-reciprocity on the collective behavior of many-body systems. Here, we show that non-reciprocity leads to time-dependent phases where spontaneously broken symmetries are dynamically restored. The resulting phase transitions are controlled by spectral singularities called exceptional points. We describe the emergence of these phases using insights from bifurcation theory and non-Hermitian quantum mechanics. Our approach captures non-reciprocal generalizations of three archetypal classes of self-organization out of equilibrium: synchronization, flocking and pattern formation. Collective phenomena in these non-reciprocal systems range from active time-(quasi)crystals to exceptional-point enforced pattern-formation and hysteresis. Our work paves the way towards a general theory of critical phenomena in non-reciprocal matter.