Abstract
Shift current is a direct current generated from nonlinear light-matter interaction in a noncentrosymmetric crystal and is considered a promising candidate for next-generation photovoltaic devices. The mechanism for shift currents in real materials is, however, still not well understood, especially if electron-hole interactions are included. Here, we employ a first-principles interacting Green's-function approach on the Keldysh contour with real-time propagation to study photocurrents generated by nonlinear optical processes under continuous wave illumination in real materials. We demonstrate a strong direct current shift current at subbandgap excitation frequencies in monolayer GeS due to strongly bound excitons, as well as a giant excitonic enhancement in the shift current coefficients at above bandgap photon frequencies. Our results suggest that atomically thin two-dimensional materials may be promising building blocks for next-generation shift current devices.
Author supplied keywords
Cite
CITATION STYLE
Chan, Y. H., Qiu, D. Y., da Jornada, F. H., & Louie, S. G. (2021). Giant exciton-enhanced shift currents and direct current conduction with subbandgap photo excitations produced by many-electron interactions. Proceedings of the National Academy of Sciences of the United States of America, 118(25). https://doi.org/10.1073/pnas.1906938118
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.