Condensed Matter (Jun 2020)

Topological Dirac Semimetal Phase in Bismuth Based Anode Materials for Sodium-Ion Batteries

  • Wei-Chi Chiu,
  • Bahadur Singh,
  • Sougata Mardanya,
  • Johannes Nokelainen,
  • Amit Agarwal,
  • Hsin Lin,
  • Christopher Lane,
  • Katariina Pussi,
  • Bernardo Barbiellini,
  • Arun Bansil

DOI
https://doi.org/10.3390/condmat5020039
Journal volume & issue
Vol. 5, no. 2
p. 39

Abstract

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Bismuth has recently attracted interest in connection with Na-ion battery anodes due to its high volumetric capacity. It reacts with Na to form Na 3 Bi which is a prototypical Dirac semimetal with a nontrivial electronic structure. Density-functional-theory based first-principles calculations are playing a key role in understanding the fascinating electronic structure of Na 3 Bi and other topological materials. In particular, the strongly-constrained-and-appropriately-normed (SCAN) meta-generalized-gradient-approximation (meta-GGA) has shown significant improvement over the widely used generalized-gradient-approximation (GGA) scheme in capturing energetic, structural, and electronic properties of many classes of materials. Here, we discuss the electronic structure of Na 3 Bi within the SCAN framework and show that the resulting Fermi velocities and s-band shift around the Γ point are in better agreement with experiments than the corresponding GGA predictions. SCAN yields a purely spin-orbit-coupling (SOC) driven Dirac semimetal state in Na 3 Bi in contrast with the earlier GGA results. Our analysis reveals the presence of a topological phase transition from the Dirac semimetal to a trivial band insulator phase in Na 3 Bi x Sb 1 − x alloys as the strength of the SOC varies with Sb content, and gives insight into the role of the SOC in modulating conduction properties of Na 3 Bi.

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