Measuring Geometric Phase based on Indefinite Causal Order in a Sagnac Interferometer
Lucas Marques Fagundes, Finlay Campbell, Richard Aguiar Maduro, Renné Medeiros de Araújo, Stephen M. Barnett, Sarah Croke, Sonja Franke-Arnold
Abstract
Sagnac interferometers are important tools for precision measurements. Cancellation of common-path noise ensures a high degree of stability against external perturbations, while their sensitivity to rotations provides the basis of laser gyroscopes. Here we highlight another, less explored feature of Sagnac interferometers: the fact that optical elements are traversed in reverse order for clockwise and counterclockwise propagating light components. This provides the opportunity to explore a classical realization of indefinite causal order, where the order of events within a sequence is not fixed. We explore this concept to identify the geometric phase associated with two non-commuting polarization operations with a single measurement. This idea may have applications for the rapid determination of polarization manipulations or optical activity within chiral media, but foremost it provides a geometric illustration of indefinite causal order.
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