论文标题
原型化合物Baal $ _4 $
Crystalline symmetry-protected non-trivial topology in prototype compound BaAl$_4$
论文作者
论文摘要
Baal $ _4 $原型晶体结构是所有结构类型中人口最多的人口最多的,它是多种子结构集的基础,包括著名的THCR $ _2 $ SI $ _2 $家族,可容纳高温超导性,并且具有众多磁性磁性和强烈相关的电子系统。 Ma $ _4 $材料家族(M = Sr,Ba,Eu; A = Al,Ga,In)本身具有一组有趣的基础状态,包括电荷和旋转订单,但在很大程度上被认为是无趣的金属。使用电子结构计算,对称分析和拓扑量子化学技术,我们预测示例性的复合baal $ _4 $,以携带具有非独处拓扑的三维dirac Spectrum,并可能跨越Brillouin区域的鼻台线,其中一对半径点与$ K_Z $ k _ $ k__z $ k的$ k_zz $/QUADRAC;方向使用$ C_ {4V} $ point组对称性位于旋转轴上。电气传输测量结果揭示了尽管带有未补偿的带状结构,以及量子振荡和角度分辨的光发射光谱测量值,但在巴尔$ _4 $中存在极大的,不饱和的正磁力,这证实了预测的多台半频道结构,具有与货车孔的口袋和van hove sigeularity(VHS)相一致的,这是一致的。因此,我们将Baal $ _4 $作为一种新的拓扑半学,将其原型状态施加在新的角色中,成为各种新拓扑材料的基础。
The BaAl$_4$ prototype crystal structure is the most populous of all structure types, and is the building block for a diverse set of sub-structures including the famous ThCr$_2$Si$_2$ family that hosts high-temperature superconductivity and numerous magnetic and strongly correlated electron systems. The MA$_4$ family of materials (M=Sr, Ba, Eu; A=Al, Ga, In) themselves present an intriguing set of ground states including charge and spin orders, but have largely been considered as uninteresting metals. Using electronic structure calculations, symmetry analysis and topological quantum chemistry techniques, we predict the exemplary compound BaAl$_4$ to harbor a three-dimensional Dirac spectrum with non-trivial topology and possible nodal lines crossing the Brillouin zone, wherein one pair of semi-Dirac points with linear dispersion along the $k_z$ direction and quadratic dispersion along the $k_x/k_y$ direction resides on the rotational axis with $C_{4v}$ point group symmetry. Electrical transport measurements reveal the presence of an extremely large, unsaturating positive magnetoresistance in BaAl$_4$ despite an uncompensated band structure, and quantum oscillations and angle-resolved photoemission spectroscopy measurements confirm the predicted multiband semimetal structure with pockets of Dirac holes and a Van Hove singularity (VHS) remarkably consistent with the theoretical prediction. We thus present BaAl$_4$ as a new topological semimetal, casting its prototype status into a new role as building block for a vast array of new topological materials.