Pressure-driven tunable properties of the small-gap chalcopyrite topological quantum material ZnGeSb2: A first-principles study

Surasree Sadhukhan, Banasree Sadhukhan, and Sudipta Kanungo
Phys. Rev. B 106, 125112 – Published 9 September 2022

Abstract

Search for new topological quantum materials is the demand of time and the theoretical prediction plays a crucial role besides the obvious experimental verification. Divination of topological properties in already well-known narrow gap semiconductors is a flourishing area in quantum material. In this view we revisited the semiconductor compound in the chalcopyrite series, with a very small gap near the Fermi energy. Using the density functional theory-based first-principles calculations, we report a strong topologically nontrivial phase in chalcopyrite ZnGeSb2, which can act as a model system of strained HgTe. The calculations reveal the nonzero topological invariant (Z2), the presence of Dirac cone crossing in the surface spectral functions with spin-momentum locked spin texture. We also study the interplay between the structural parameters and electronic properties, and report the tunable topological properties due to a very small band gap, from nontrivial to trivial phase under the application of moderate hydrostatic pressure within 7 GPa. A small modification of a lattice parameter is enough to achieve this topological phase transition which is easily accomplished in an experimental laboratory. The calculations show that a discontinuity in the tetragonal distortion of noncentrosymmetric ZnGeSb2 plays a crucial role in driving this topological phase transition. Our results are further collaborated with a low energy k·p model Hamiltonian to validate our abinitio findings. We showed that the evaluation of the model band energy dispersion under the hydrostatic pressure is consistent with the obtained results.

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  • Received 23 December 2021
  • Revised 25 July 2022
  • Accepted 29 August 2022

DOI:https://doi.org/10.1103/PhysRevB.106.125112

©2022 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Surasree Sadhukhan1,*, Banasree Sadhukhan2,3,*,†, and Sudipta Kanungo1,‡

  • 1School of Physical Sciences, Indian Institute of Technology Goa, 403401 Ponda, India
  • 2KTH Royal Institute of Technology, AlbaNova University Center, SE-10691 Stockholm, Sweden
  • 3Institute for Theoretical Solid State Physics, IFW Dresden, Helmholtzstrasse 20, 01069 Dresden, Germany

  • *These authors contributed equally to this work.
  • b.sadhukhan@ifw-dresden.de
  • sudipta@iitgoa.ac.in

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Issue

Vol. 106, Iss. 12 — 15 September 2022

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