Anisotropic spin Hall and spin Nernst effects in bismuth semimetal
Guang-Yu Guo

TL;DR
This paper theoretically investigates the anisotropic spin Hall and spin Nernst effects in bismuth, revealing large tensor elements, significant anisotropy, and potential explanations for experimental variations in spin Hall angles.
Contribution
It provides the first detailed theoretical analysis of the tensor elements and anisotropy of spin Hall and Nernst effects in bismuth based on relativistic band structure calculations.
Findings
Large spin Hall conductivity tensor elements (~1000 S/cm) comparable to platinum.
Gigantic spin Hall angles (~20%) due to low electrical conductivity.
Pronounced spin Nernst conductivity elements, smaller than platinum but comparable to gold.
Abstract
Bismuth is an archetypal semimetal with gigantic spin-orbit coupling and it has been a major source material for the discovery of seminal phenomena in solid state physics for more than a century. In recent years, spin current transports in bismuth have also attracted considerable attention. In this paper, we theoretically study both spin Hall effect (SHE) and spin Nernst effect (SNE) in bismuth, based on relativistic band structure calculations. First, we find that there are three independent tensor elements of spin Hall conductivity (SHC) and spin Nernst conductivity (SNC), namely, , , and . We calculate all the elements as a function of the Fermi energy. Second, we find that all SHC tensor elements are large, being 1000 (/e)(S/cm) and comparable to that of platinum. Furthermore, because of its low electrical conductivity, the corresponding…
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Taxonomy
TopicsQuantum and electron transport phenomena · Topological Materials and Phenomena · Graphene research and applications
