Cubic Nonlinearity of Graphene-Oxide Monolayer

Materials (Basel). 2023 Oct 12;16(20):6664. doi: 10.3390/ma16206664.

Abstract

The cubic nonlinearity of a graphene-oxide monolayer was characterized through open and closed z-scan experiments, using a nano-second laser operating at a 10 Hz repetition rate and featuring a Gaussian spatial beam profile. The open z-scan revealed a reverse saturable absorption, indicating a positive nonlinear absorption coefficient, while the closed z-scan displayed valley-peak traces, indicative of positive nonlinear refraction. This observation suggests that, under the given excitation wavelength, a two-photon or two-step excitation process occurs due to the increased absorption in both the lower visible and upper UV wavelength regions. This finding implies that graphene oxide exhibits a higher excited-state absorption cross-section compared to its ground state. The resulting nonlinear absorption and nonlinear refraction coefficients were estimated to be approximately ~2.62 × 10-8 m/W and 3.9 × 10-15 m2/W, respectively. Additionally, this study sheds light on the interplay between nonlinear absorption and nonlinear refraction traces, providing valuable insights into the material's optical properties.

Keywords: 2D materials; nonlinear absorption; nonlinear refraction; one-photon transition; two-photon transition.

Grants and funding

This work was supported at Hampton by NASA NNX15AQ03A and ARO W911NF-15-1-0535; at UNC-Pembroke by 170040/368; and at K1 Solution R&D Center by the Korean NRF2020M3H4A3081799.