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Engineering Nonlinear Optical Responses via Inversion Symmetry Breaking in Bilayer Bi2Se3

Materials Science 2026-03-27 v1

Abstract

Paucity of naturally occurring noncentrosymmetric materials is stimulating growing interest in engineered two-dimensional systems for nonlinear optical applications. Here, we show that breaking inversion symmetry in centrosymmetric bilayer Bi2_2Se3_3 through twisting, point-defect insertion, or the application of an external electric field unlocks rich nonlinear optical responses. In twisted bilayer Bi2_2Se3_3 at the first commensurate angle of 21.78^\circ, we find peak shift and injection current conductivities of -14 nm.μAV2 nm.\mu AV^{-2} and 104 ×108\times 10^8 nm.AV2s1nm.A V^{-2}s^{-1}, respectively, which lie in the visible spectrum and enable efficient THz applications. The external electric field and point-defect insertion both transform the bilayer into C3v_ {3v} symmetry, with the selenium vacancy (VSe_{Se}) achieving peak shift and injection current conductivities of -190 nm.μAV2\mu AV^{-2} and -170 ×108\times 10^8 nm.AV2s1nm.A V^{-2}s^{-1}. In all three cases, the peak nonlinear optical responses are found to be comparable to those of benchmark 2D materials such as GeS, and the broadband responses, including helicity-dependent current generation, make these engineered bilayers viable candidates for next-generation 2D photovoltaics.

Keywords

Cite

@article{arxiv.2603.24834,
  title  = {Engineering Nonlinear Optical Responses via Inversion Symmetry Breaking in Bilayer Bi2Se3},
  author = {Vineet Kumar Sharma and Alana Okullo and Barun Ghosh and Arun Bansil and Sugata Chowdhury},
  journal= {arXiv preprint arXiv:2603.24834},
  year   = {2026}
}
R2 v1 2026-07-01T11:38:08.134Z