论文标题
拓扑层层中拓扑层的光学控制
Optical Control of Topological Polariton Phase in a Perovskite Lattice
论文作者
论文摘要
强烈的光线相互作用通过物质调味灯来丰富拓扑光子学,这提供了实现具有免疫力的可调拓扑设备的可能性。拓扑激子极化子,具有巨大光学非线性的半灯半分粒子是具有相位可调性的主动拓扑光子学的独特平台。先前的激子极化拓扑绝缘子的演示仍然需要低温温度及其拓扑特性,通常没有相位可调性。在这里,我们在实验上证明了室温激子拓扑拓扑拓扑仪,具有钙钛矿锯齿形晶格中的活性相可调性。偏振是控制不同拓扑阶段之间可逆过渡的自由度,这要归功于卤化物钙钛矿微腔的极化依赖性各向异性。在存在自然缺陷的情况下,拓扑上的极化状态持续存在,表现出强烈的疾病免疫力。我们进一步证明,激子极化子可以在光学泵送下凝结到拓扑边缘状态。这些结果为实现具有室温操作的可调拓扑偏光设备提供了理想的平台,该设备可以在光学控制,调制和开关中找到重要的应用。
Strong light-matter interaction enriches topological photonics by dressing light with matter, which provides the possibility to realize tuneable topological devices with immunity to defects. Topological exciton polaritons, half-light half-matter quasiparticles with giant optical nonlinearity represent a unique platform for active topological photonics with phase tunability. Previous demonstrations of exciton polariton topological insulators still demand cryogenic temperatures and their topological properties are usually fixed without phase tunability. Here, we experimentally demonstrate a room-temperature exciton polariton topological insulator with active phase tunability in a perovskite zigzag lattice. Polarization serves as a degree of freedom to control the reversible transition between distinct topological phases, thanks to the polarization-dependent anisotropy in halide perovskite microcavities. The topologically nontrivial polariton states localized in the edges persist in the presence of a natural defect, showing strong immunity to disorder. We further demonstrate that exciton polaritons can condense into the topological edge states under optical pumping. These results provide an ideal platform for realizing tuneable topological polaritonic devices with room-temperature operation, which can find important applications in optical control, modulation and switching.