Thermodynamic theory of highly multimoded nonlinear optical systems
Fan O. Wu, Absar U. Hassan, Demetrios N. Christodoulides

TL;DR
This paper develops a thermodynamical framework to understand the complex behavior of highly multimoded nonlinear optical systems, revealing fundamental principles and potential for new high-power optical devices.
Contribution
It introduces a universal thermodynamic theory for multimode nonlinear optics, deriving equations of state and analyzing energy flow and thermodynamic processes in such systems.
Findings
Internal energy and optical power obey thermodynamic laws.
Isentropic processes follow derived thermodynamic laws.
Potential for Carnot-like cycles in optical systems.
Abstract
The quest for ever higher information capacities has brought about a renaissance in multimode optical waveguide systems. This resurgence of interest has recently initiated a flurry of activities in nonlinear multimode fiber optics. The sheer complexity emerging from the presence of a multitude of nonlinearly interacting modes has led not only to new opportunities in observing a host of novel optical effects that are otherwise impossible in single-mode settings, but also to new theoretical challenges in understanding their collective dynamics. In this Article, we present a consistent thermodynamical framework capable of describing in a universal fashion the exceedingly intricate behavior of such nonlinear highly multimoded photonic configurations at thermal equilibrium. By introducing pertinent extensive variables, we derive new equations of state and show that both the 'internal energy'…
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