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Giant anisotropic nonlinear optical response in transition metal monopnictide Weyl semimetals

Materials Science 2017-04-26 v3 Optics

Abstract

Although Weyl fermions have proven elusive in high-energy physics, their existence as emergent quasiparticles has been predicted in certain crystalline solids in which either inversion or time-reversal symmetry is broken\cite{WanPRB2011,BurkovPRL2011, WengPRX2015,HuangNatComm2015}. Recently they have been observed in transition metal monopnictides (TMMPs) such as TaAs, a class of noncentrosymmetric materials that heretofore received only limited attention \cite{XuScience2015, LvPRX2015, YangNatPhys2015}. The question that arises now is whether these materials will exhibit novel, enhanced, or technologically applicable electronic properties. The TMMPs are polar metals, a rare subset of inversion-breaking crystals that would allow spontaneous polarization, were it not screened by conduction electrons \cite{anderson1965symmetry,shi2013ferroelectric,kim2016polar}. Despite the absence of spontaneous polarization, polar metals can exhibit other signatures of inversion-symmetry breaking, most notably second-order nonlinear optical polarizability, χ(2)\chi^{(2)}, leading to phenomena such as optical rectification and second-harmonic generation (SHG). Here we report measurements of SHG that reveal a giant, anisotropic χ(2)\chi^{(2)} in the TMMPs TaAs, TaP, and NbAs. With the fundamental and second harmonic fields oriented parallel to the polar axis, the value of χ(2)\chi^{(2)} is larger by almost one order of magnitude than its value in the archetypal electro-optic materials GaAs \cite{bergfeld2003second} and ZnTe \cite{wagner1998dispersion}, and in fact larger than reported in any crystal to date.

Keywords

Cite

@article{arxiv.1609.04894,
  title  = {Giant anisotropic nonlinear optical response in transition metal monopnictide Weyl semimetals},
  author = {Liang Wu and S. Patankar and T. Morimoto and N. L. Nair and E. Thewalt and A. Little and J. G. Analytis and J. E. Moore and J. Orenstein},
  journal= {arXiv preprint arXiv:1609.04894},
  year   = {2017}
}

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Published in Nature Physics