Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Department of Electrical and Systems Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Phys Rev Lett. 2023 Jun 30;130(26):263801. doi: 10.1103/PhysRevLett.130.263801.
Topological effects in photonic non-Hermitian systems have recently led to extraordinary discoveries including nonreciprocal lasing, topological insulator lasers, and topological metamaterials, to mention a few. These effects, although realized in non-Hermitian systems, are all stemming from their Hermitian components. Here we experimentally demonstrate the topological skin effect and boundary sensitivity, induced by the imaginary gauge field in a two-dimensional laser array, which are fundamentally different from any Hermitian topological effects and intrinsic to open systems. By selectively and asymmetrically injecting gain into the system, we have synthesized an imaginary gauge field on chip, which can be flexibly reconfigured on demand. We show not only that the non-Hermitian topological features remain intact in a nonlinear nonequilibrium system, but also that they can be harnessed to enable persistent phase locking with intensity morphing. Our work lays the foundation for a dynamically reconfigurable on-chip coherent system with robust scalability, attractive for building high-brightness sources with arbitrary intensity profiles.
最近,光子非厄米系统中的拓扑效应已经带来了一些非凡的发现,包括非互易激光、拓扑绝缘体激光和拓扑超材料等等。这些效应虽然在非厄米系统中实现,但都是源自其厄米分量。在这里,我们实验演示了二维激光阵列中由虚规范场引起的拓扑表皮效应和边界敏感性,这与任何厄米拓扑效应都不同,是开放系统所固有的。通过有选择地和不对称地向系统注入增益,我们在芯片上合成了一个虚规范场,它可以根据需要灵活地重新配置。我们不仅表明,在非线性非平衡系统中,非厄米拓扑特征仍然保持完整,而且还可以利用它们来实现具有强度变形的持续相位锁定。我们的工作为具有鲁棒可扩展性的动态可重构片上相干系统奠定了基础,这对于构建具有任意强度分布的高亮度光源具有吸引力。