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arXiv · 2309.14077

Second-order optical response of superconductors induced by supercurrent injection

Abstract

We develop a theory of the nonlinear optical responses in superconducting systems in the presence of a dc supercurrent. The optical transitions between particle-hole pair bands across the superconducting gap are allowed in clean superconductors as the inversion symmetry breaking by supercurrent. Vertex correction is included in optical conductivity to maintain the $U(1)$ gauge symmetry in the mean-field formalism, which contains the contributions from collective modes. We show two pronounced current-dependent peaks in the second-harmonic generalization $σ^{(2)}(2ω,ω,ω)$ at the gap edge $2\hbarω=2Δ$ and $\hbarω=2Δ$ and one in the photocurrent effect $σ^{(2)}(0,ω,-ω)$ at $\hbarω=2Δ$, all of which diverge in the clean limit. We demonstrate this in the models of a single-band superconductor with $s$-wave and $d$-wave pairings, and Dirac fermion systems with $s$-wave pairing. Our theory predicts that the current-induced peak in $\text{Im}[σ^{(2)}(ω)]$ is proportional to the square of the supercurrent density in the $s$-wave single-band model, with the same order of magnitude as the recent experimental observation of second-harmonic generation in NbN by Nakamura et al. [Phys. Rev. Lett. 125, 097004 (2020)]. Supercurrent induced nonlinear optical spectroscopy provides a valuable toolbox to explore novel superconductors.

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BibTeXRIS

Linghao Huang, Jing Wang. 2023-12-22. Second-order optical response of superconductors induced by supercurrent injection. https://doi.org/10.1103/physrevb.108.224516

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