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Title: | First-principles study on the superconductivity of doped zirconium diborides |
Authors: | Nayak, Sanjay SINGH, CHANDAN K. Dahlqvist, Martin Rosen, Johanna Eklund, Per Birch, Jens Dept. of Physics |
Keywords: | Physics 2022-JUN-WEEK3 TOC-JUN-2022 2022 |
Issue Date: | Apr-2022 |
Publisher: | American Physical Society |
Citation: | Physical Review Materials, 6(4), 044805. |
Abstract: | Recent experiments [Barbero et al. Phys. Rev. B 95, 094505 (2017)] have established that bulk superconductivity (Tc∼8.3–8.7K) can be induced in AlB2− type ZrB2 and HfB 2, highly covalent refractory ceramics, by vanadium (V) doping. These AlB2−structured phases provide an alternative to earlier diamondlike or diamond-based superconducting and superhard materials. However, the underlying mechanism for doping-induced superconductivity in these materials is yet to be addressed. In this paper, we have used first-principles calculations to probe electronic structure, lattice dynamics, and electron-phonon coupling (EPC) in V-doped ZrB2 and consequently examine the origin of the superconductivity. We find that, while doping-induced stress weakens the EPC, the concurrently induced charges strengthen it. The calculated critical transition temperature (Tc) in electron (and V)-doped ZrB2 is at least one order of magnitude lower than experiments, despite considering the weakest possible Coulomb repulsion between electrons in the Cooper pair, hinting a complex origin of superconductivity in it. |
URI: | https://doi.org/10.1103/PhysRevMaterials.6.044805 http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/7103 |
ISSN: | 2475-9953 |
Appears in Collections: | JOURNAL ARTICLES |
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