4.8 Article

Polaronic Nonlinear Optical Response and All-Optical Switching Based on an Ionic Metal Oxide

Journal

SMALL
Volume -, Issue -, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202306226

Keywords

all-optical switch; nonlinear optical; polaron; pulse laser generation; TiO2

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This study explores the nonlinear optical (NLO) response mediated by polarons supported by a model ionic metal oxide, TiO2. The formation of polaronic states within the bandgap significantly enhances the NLO absorption coefficient in the sub-bandgap regions, characterized by an ultrafast response. Based on this phenomenon, applications such as all-optical switches for ultrafast pulse generation and modulation of optical signals have been developed.
It has been well-established that light-matter interactions, as manifested by diverse linear and nonlinear optical (NLO) processes, are mediated by real and virtual particles, such as electrons, phonons, and excitons. Polarons, often regarded as electrons dressed by phonons, are known to contribute to exotic behaviors of solids, from superconductivity to photocatalysis, while their role in materials' NLO response remains largely unexplored. Here, the NLO response mediated by polarons supported by a model ionic metal oxide, TiO2, is examined. It is observed that the formation of polaronic states within the bandgap results in a dramatic enhancement of NLO absorption coefficient by over 130 times for photon energies in the sub-bandgap regions, characterized by a 100 fs scale ultrafast response that is typical for thermalized electrons in metals. The ultrafast polaronic NLO response is then exploited for the development of all-optical switches for ultrafast pulse generation in near-infrared (NIR) fiber lasers and modulation of optical signal in the telecommunication band based on evanescent interaction on a planar waveguide chip. These results suggest that the polarons supported by dielectric ionic oxides can fill the gaps left by dielectric and metallic materials and serve as a novel platform for nonlinear photonic applications.

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