4.6 Article

Tunable goniopolarity of graphenelike boron layers in metal diborides

Journal

PHYSICAL REVIEW B
Volume 106, Issue 16, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.106.165204

Keywords

-

Funding

  1. National Natural Science Foundation of China
  2. Taishan Scholar Program of Shandong Province
  3. [12074218]

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Researchers have identified the potential of layered metal diboride materials in achieving orientation-dependent conduction polarity through first-principles calculations, with the anisotropic Seebeck coefficients of these materials being efficiently enhanced by applying tensile strain.
The orientation-dependent conduction polarity, e.g., p-type conduction along one direction and n-type con-duction along another direction, namely goniopolarity, observed in highly anisotropic materials brought us an alternative concept for novel electronic devices. But goniopolarity has hardly been utilized due to the rarity of goniopolar materials. Here, we associate goniopolarity with the saddle points in electronic band structure and the hyperbolic Fermi surface of materials and highlight the potential of layered metal diboride (MB2) materials in achieving this interesting phenomenon using first-principles calculations. We demonstrate that the electron-doped MgB2, CaB2, and SrB2 can exhibit remarkable orientation-dependent conduction polarity with opposite Seebeck coefficients which are detectable in verifying goniopolarity. We attribute the goniopolarity with the px,y orbitals of the boron layers of these materials which constitute anisotropic electronic states along in-plane and out of plane directions. Moreover, their anisotropic Seebeck coefficients can be efficiently enhanced by applying tensile strain. This work offers a promising strategy for design of goniopolar materials and regulation of goniopolarity.

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