We calculate the coherent electronic contributions to the third-order optical response (-; u, 0,-0) of bulk semiconductors in the independent-particle approximation using a simple two-band model. The formalism used to derive this response coefBcient naturally accounts for aQ relevant contributions and, in contrast to existing results in the literature, leads to physically realistic, nondivergent expressions in the limits u, 0-+ 0. Such well behaved infrared limits imply that the imaginary part of our y correctly describes the dispersion of nondegenerate absorption; indeed for 0 = 0 our results are consistent with predictions from Franz-Keldysh theory. Complementing these results, we can now also unambiguously extract from the real part of y the below band gap, two-band model predictions for the nonlinear refractive index, the dc Kerr eKect, and the virtual photoconductivity; all of these predict a finite, real y~l(0; 0, 0, 0) as physically expected for clean, cold semiconductors. Finally, our specific results help expose more general consequences of the gauge choice when employing common approximate band-structure models.
scite is a Brooklyn-based organization that helps researchers better discover and understand research articles through Smart Citations–citations that display the context of the citation and describe whether the article provides supporting or contrasting evidence. scite is used by students and researchers from around the world and is funded in part by the National Science Foundation and the National Institute on Drug Abuse of the National Institutes of Health.