论文标题
基于二阶角状态的低阈值拓扑纳米仪
Low-threshold topological nanolasers based on second-order corner state
论文作者
论文摘要
拓扑激光器不受瑕疵和疾病的影响,最近基于多种强大的边缘状态证明了这一点,主要是在微观上。仍将探索2D片上拓扑纳米射击器,具有较小的占地面积,低阈值和高能量效率,仍有待探索。在这里,我们报告了在2D光子晶体板中具有高性能的拓扑纳米剂的第一次实验演示。基于广义的2D Su-Schrieffer-Heeger模型,借助Wannier-type 0D角状态形成了拓扑纳米腔。阈值低约1 $μW$,高自发发射耦合因子为0.25,量子点作为活性材料观察到0.25。这种性能比拓扑边缘激光器的性能要好得多,并且与常规的光子晶体纳米层相当。我们对低阈值拓扑纳米剂的实验证明对于在古典和量子方案中操纵光子的拓扑纳米光电路的发展将具有重要意义。
The topological lasers, which are immune to imperfections and disorders, have been recently demonstrated based on many kinds of robust edge states, being mostly at microscale. The realization of 2D on-chip topological nanolasers, having the small footprint, low threshold and high energy efficiency, is still to be explored. Here, we report on the first experimental demonstration of the topological nanolaser with high performance in 2D photonic crystal slab. Based on the generalized 2D Su-Schrieffer-Heeger model, a topological nanocavity is formed with the help of the Wannier-type 0D corner state. Laser behaviors with low threshold about 1 $μW$ and high spontaneous emission coupling factor of 0.25 are observed with quantum dots as the active material. Such performance is much better than that of topological edge lasers and comparable to conventional photonic crystal nanolasers. Our experimental demonstration of the low-threshold topological nanolaser will be of great significance to the development of topological nanophotonic circuitry for manipulation of photons in classical and quantum regimes.