论文标题

通用多翼半金属的传输系数中粒子孔对称性破坏的独特签名

Distinct signatures of particle-hole symmetry breaking in transport coefficients for generic multi-Weyl semimetals

论文作者

Nag, Tanay, Kennes, Dante M.

论文摘要

我们提出并研究打破粒子孔对称性的通用多翼半角(MWSM)晶格汉密尔顿。这些模型分为两类:模型I(II),其中差距和倾斜项耦合(分离)可以在混合相(类型I和II II相)中同时(分别)(分别)托管I型I型和II型Weyl节点。我们集中于分散,差距和倾斜项中各向异性和非线性如何影响扩散的二阶传输量,即圆形光钙效应(CPGE)和浆果曲率偶然偶极子(BCD)以及一阶Magnus Hall效应(MHE)。拓扑电荷的签名清楚地印在模型I中的混合MWSM相的量化CPGE响应中。在模型II的类型I WSM相中也发现了这种量化,但是,由于相同的拓扑特性,这两种情况下,CPGE的CPGE的频率分布在两种情况下的频率分布不同,因此在这两种情况下是截然不同的。对于I Model II,分别在BCD响应中明确表明了Weyl节点附近和远离WN的贡献。激活动量的费米表面特性导致两个模型的MHE上的一些标志性特征。此外,我们确定了I型,II和杂种阶段的上述响应的区分,以提供实验可行的探针以区分这些WSMS阶段。

We propose and study generic multi-Weyl semimetal (mWSM) lattice Hamiltonians that break particle-hole symmetry. These models fall into two categories: model I (model II) where the gap and tilt terms are coupled (decoupled) can host type-I and type-II Weyl nodes simultaneously (separately) in a hybrid phase (type-I and type-II phases, respectively). We concentrate on the question of how anisotropy and non-linearity in the dispersions, gaps and tilt terms influence diffusive second order transport quantities namely, the circular photogalvanic effect (CPGE) and the Berry curvature dipole (BCD) as well as first order Magnus Hall effect (MHE) in the ballistic limit. The signatures of topological charges are clearly imprinted in the quantized CPGE response for the hybrid mWSM phase in model I. Such a quantization is also found in the type-I WSM phase for model II, however, the frequency profiles of the CPGE in these two cases is distinctively different owing to their different band dispersion irrespective of the identical topological properties. The contributions from the vicinity of Weyl nodes and away from the WNs are clearly manifested in the BCD response, respectively, for model I model II. The Fermi surface properties for the activated momentum lead to a few hallmark features on the MHE for both the models. Furthermore, we identify distinguishing signatures of the above responses for type-I, type-II and hybrid phases to provide an experimentally viable probe to differentiate these WSMs phases.

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