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

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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