Observing relativistic trajectories of single photons
Sayantan Das, Daniel S. Dahl, Daniel Peace, Marcelo P. Almeida, Abhishek Roy, Markus Rambach, Andrew G. White, Timothy C. Ralph, Jacquiline Romero
Abstract
While the standard interpretation of quantum mechanics does not assign definite trajectories to particles, the Bohmian interpretation does. Only recently has an operational method for reconciling Bohmian mechanics with relativity been proposed. Here, we experimentally reconstruct relativistic Bohmian trajectories of a single photon in a Michelson-Sagnac interferometer, where counter-propagating probability amplitudes interfere head-on at the speed of light. As predicted by the relativistic Bohmian theory, we observe subluminal and superluminal features of the Bohmian trajectories of the photon traversing through the fringes. Our work provides experimental access to relativistic Bohmian mechanics and enables exploration of its unusual and counterintuitive properties.
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