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First principles calculation of shift current in chalcopyrite semiconductor ZnSnP$_2$

Materials Science 2020-07-17 v2

Abstract

The bulk photovoltaic effect generates intrinsic photocurrents in materials without inversion symmetry. Shift current is one of the bulk photovoltaic phenomena related to the Berry phase of the constituting electronic bands: photo-excited carriers coherently shift in real space due to the difference in the Berry connection between the valence and conduction bands. Ferroelectric semiconductors and Weyl semimetals are known to exhibit such nonlinear optical phenomena. Here we consider chalcopyrite semiconductor ZnSnP2_2 which lacks inversion symmetry and calculate the shift current conductivity. We find that the magnitude of the shift current is comparable to the recently measured values on other ferroelectric semiconductors and an order of magnitude larger than bismuth ferrite. The peak response for both optical and shift current conductivity, which mainly comes from P-3pp and Sn-5pp orbitals, is several eV above the bandgap.

Cite

@article{arxiv.1911.03376,
  title  = {First principles calculation of shift current in chalcopyrite semiconductor ZnSnP$_2$},
  author = {Banasree Sadhukhan and Yang Zhang and Rajyavardhan Ray and Jeroen van den Brink},
  journal= {arXiv preprint arXiv:1911.03376},
  year   = {2020}
}
R2 v1 2026-06-23T12:09:34.059Z