Leykam Daniel, Rechtsman M C, Chong Y D
Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371, Singapore.
Department of Physics, The Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Phys Rev Lett. 2016 Jul 1;117(1):013902. doi: 10.1103/PhysRevLett.117.013902. Epub 2016 Jun 29.
We propose a class of photonic Floquet topological insulators based on staggered helical lattices and an efficient numerical method for calculating their Floquet band structure. The lattices support anomalous Floquet topological insulator phases with vanishing Chern number and tunable topological transitions. At the critical point of the topological transition, the band structure hosts a single unpaired Dirac cone, which yields a variety of unusual transport effects: a discrete analogue of conical diffraction, weak antilocalization not limited by intervalley scattering, and suppression of Anderson localization. Unlike previous designs, the effective gauge field strength can be controlled via lattice parameters such as the interhelix distance, significantly reducing radiative losses and enabling applications such as switchable topological waveguiding.
我们提出了一类基于交错螺旋晶格的光子弗洛凯拓扑绝缘体以及一种用于计算其弗洛凯能带结构的有效数值方法。这些晶格支持具有零陈数和可调拓扑转变的反常弗洛凯拓扑绝缘体相。在拓扑转变的临界点,能带结构包含一个单个未配对的狄拉克锥,这会产生各种不寻常的输运效应:锥形衍射的离散类似物、不受能谷散射限制的弱反局域化以及安德森局域化的抑制。与先前的设计不同,有效规范场强度可通过诸如螺旋间距等晶格参数来控制,从而显著降低辐射损耗并实现诸如可切换拓扑波导等应用。