Chiral thermodynamics in tailored chiral optical environments
Gabriel Schnoering, Samuel Albert, Antoine Canaguier-Durand, Cyriaque, Genet

TL;DR
This paper models how chiral optical environments influence the thermodynamics of nanoparticle diffusion, revealing enantiospecific effects and potential for chiral deracemization through optomechanical coupling.
Contribution
It introduces a novel optomechanical model demonstrating how chiral optical fields affect nanoparticle thermodynamics and enantiospecific barrier crossing.
Findings
Chiral optical forces modify the free energy landscape.
Dissipative chiral environments break symmetry and transfer energy.
Simulations confirm thermodynamic control via chirality.
Abstract
We present an optomechanical model that describes the stochastic motion of an overdamped chiral nanoparticle diffusing in the optical bistable potential formed in the standing-wave of two counter-propagating Gaussian beams. We show how chiral optical environments can be induced in the standing-wave with no modification of the initial bistability by controlling the polarizations of each beam. Under this control, optical chiral densities and/or an optical chiral fluxes are generated, associated respectively with reactive vs. dissipative chiral optical forces exerted on the diffusing chiral nanoparticle. This optomechanical chiral coupling bias the thermodynamics of the thermal activation of the barrier crossing, in ways that depend on the nanoparticle enantiomer and on the optical field enantiomorph. We show that reactive chiral forces, being conservative, contribute to a global,…
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