Statistical mechanics and pressure of composite multimoded weakly nonlinear optical systems

Author:

Efremidis Nikolaos K.1ORCID,Christodoulides Demetrios N.2

Affiliation:

1. FORTH

2. University of Southern California

Abstract

Statistical mechanics can provide a versatile theoretical framework for investigating the collective dynamics of weakly nonlinear-wave settings that can be utterly complex to describe otherwise. In optics, composite systems arise due to interactions between different frequencies and polarizations. The purpose of this work is to develop a thermodynamic theory that takes into account the synergistic action of multiple components. We find that the type of the nonlinearity involved can have important implications in the thermalization process and, hence, can lead to different thermal equilibrium conditions. Importantly, we derive closed-form expressions for the actual optomechanical pressure that is exerted on the system. In particular, the total optomechanical pressure is the sum of the partial pressures due to each component. Our results can be applied to a variety of weakly nonlinear optical settings such as multimode fibers, bulk waveguides, photonic lattices, and coupled microresonators. We present two specific examples, where two colors interact in a one-waveguide array with either a cubic or quadratic nonlinearity.

Funder

Ministry of Defense

MPS Simons Collaboration

U.S. Department of Energy

Army Research Office

Office of Naval Research

Air Force Office of Scientific Research

Publisher

Optica Publishing Group

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