Field theory description of the non-perturbative optical nonlinearity of epsilon-near-zero media

Author:

Tamashevich Yaraslau1ORCID,Shubitidze Tornike2ORCID,Dal Negro Luca234ORCID,Ornigotti Marco1ORCID

Affiliation:

1. Faculty of Engineering and Natural Sciences, Tampere University 1 , Tampere, Finland

2. Department of Electrical and Computer Engineering, Boston University 2 , 8 Saint Mary’s Street, Boston, Massachusetts 02215, USA

3. Department of Physics, Boston University 3 , 590 Commonwealth Avenue, Boston, Massachusetts 02215, USA

4. Division of Materials Science and Engineering, Boston University 4 , 15 St. Mary’s street, Brookline, Massachusetts 02446, USA

Abstract

In this paper, we introduce a fully non-perturbative approach for the description of the optical nonlinearity of epsilon-near-zero (ENZ) media. In particular, based on the rigorous Feynman path integral method, we develop a dressed Lagrangian field theory for light–matter interactions and discuss its application to dispersive Kerr-like media with order-of-unity light-induced refractive index variations. Specifically, considering the relevant case of Indium Tin Oxide (ITO) nonlinearities, we address the novel regime of non-perturbative refractive index variations in ENZ media and establish that it follows naturally from a scalar field theory with a Born–Infeld Lagrangian. Moreover, we developed a predictive model that includes the intrinsic saturation effects originating from the light-induced modification of the Drude terms in the linear dispersion of ITO materials. Our results extend the Huttner–Barnett–Bechler electrodynamics model to the case of non-perturbative optical Kerr-like media providing an intrinsically nonlinear, field-theoretic framework for understanding the exceptional nonlinearity of ITO materials beyond traditional perturbation theory.

Funder

Academy of Finland

U.S. Army Research Office

Publisher

AIP Publishing

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