Yu Hang, Guo Guan En, Wang Gang, Hua Jiang Jian, Hu Jun, Hui Wu Jin, Kuang Lee Ray
Opt Express. 2020 Jul 6;28(14):21072-21080. doi: 10.1364/OE.395756.
Realizing the topological bands of helical states poses a challenge in studying ultracold atomic gases. Motivated by the recent experimental success in realizing chiral optical ladders, here we present a scheme for synthesizing topological quantum matter, especially the quantum spin Hall phase, in the chiral optical ladders. More precisely, we first establish the synthetic pseudo-spin-orbit coupling and Zeeman splitting in the chiral ladders. After analyzing the band structure of the ladders exposed to the bichromatic optical potentials, we report the existence of quantum spin Hall phase. We further identify a rich phase diagram of the bichromatic chiral ladders, illustrating that our proposal features a large space of system parameters exhibiting quantum phase transitions. Our scheme is within reach of the existing ladder optical lattices and hence provides a new method to engineer the elaborate topological bands for cold atomic gases.
实现螺旋态的拓扑能带是研究超冷原子气体面临的一项挑战。受近期在手性光学晶格实现方面实验成功的启发,我们在此提出一种在手性光学晶格中合成拓扑量子物质,特别是量子自旋霍尔相的方案。更确切地说,我们首先在该手性晶格中建立合成赝自旋 - 轨道耦合和塞曼分裂。在分析了受双色光学势作用的晶格的能带结构后,我们报告了量子自旋霍尔相的存在。我们进一步确定了双色手性晶格丰富的相图,表明我们的方案具有展示量子相变的大系统参数空间。我们的方案在现有晶格光学晶格的能力范围内,因此为冷原子气体设计精细的拓扑能带提供了一种新方法。