论文标题
与3D自旋轨道偶联的超低量子气中理想的Weyl半分条带的实现
Realization of ideal Weyl semimetal band in ultracold quantum gas with 3D Spin-Orbit coupling
论文作者
论文摘要
Weyl Semimetals [1-6]是散装带中的三维(3D)无间隙拓扑阶段,散装带中的Weyl锥,寄主无质量的准粒子被称为Weyl Fermions,在过去的二十年代中由Hermann Weyl理论化了[7] [7]。晶格理论约束了韦尔锥必须成对成对,而锥的数量最少为两个。只有两个Weyl锥的半学是理想的Weyl半学(IWSM),它是探索宽阔的Weyl物理学但很难在固体中设计的最佳平台。在这里,我们通过首次合成3D自旋轨道(SO)耦合以实现IWSM频段的实验实现。工程3D配置 - 可调的光学拉曼晶格[8],我们意识到Weyl型,因此可以使用可控性实现IWSM频段的超低量子气体。拓扑Weyl点清楚地通过平衡中的虚拟切片成像技术[8,9]测量,并在淬火动力学中进一步解决,从而揭示了已实现的IWSM频段的关键信息。 IWSM频段的实现开辟了一条途径,以基于最佳Weyl Semimetal平台研究各种外来现象。
The Weyl semimetals [1-6] are three-dimensional (3D) gapless topological phases with Weyl cones in the bulk band, and host massless quasiparticles known as Weyl fermions which were theorized by Hermann Weyl in the last twenties [7]. The lattice theory constrains that Weyl cones must come in pairs, with the minimal number of cones being two. The semimetal with only two Weyl cones is an ideal Weyl semimetal (IWSM) which is the optimal platform to explore broad Weyl physics but hard to engineer in solids. Here, we report the experimental realization of the IWSM band by synthesising for the first time a 3D spin-orbit (SO) coupling for ultracold atoms. Engineering a 3D configuration-tunable optical Raman lattice [8], we realize the Weyl type SO coupling for ultracold quantum gas, with which the IWSM band is achieved with controllability. The topological Weyl points are clearly measured via the virtual slicing imaging technique [8, 9] in equilibrium, and further resolved in the quench dynamics, revealing the key information of the realized IWSM bands. The realization of the IWSM band opens an avenue to investigate various exotic phenomena based on the optimal Weyl semimetal platforms.