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成果報告書

Dynamically Generated Synthetic Electric Fields for Photons

MPS-Authors
/persons/resource/persons216340

Walter,  Stefan
Friedrich-Alexander-Universität Erlangen-Nürnberg Institut für Theoretische Physik;
Marquardt Division, Max Planck Institute for the Science of Light, Max Planck Society;

/persons/resource/persons201125

Marquardt,  Florian
Friedrich-Alexander-Universität Erlangen-Nürnberg Institut für Theoretische Physik;
Marquardt Division, Max Planck Institute for the Science of Light, Max Planck Society;

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フルテキスト (公開)

1806.08191.pdf
(プレプリント), 402KB

付随資料 (公開)

2018_Zapletal.png
(付録資料), 5KB

引用

Zapletal, P., Walter, S., & Marquardt, F. (submitted). Dynamically Generated Synthetic Electric Fields for Photons.


引用: https://hdl.handle.net/21.11116/0000-0001-DF13-F
要旨
Static synthetic magnetic fields give rise to phenomena including the Lorentz force and the quantum Hall effect even for neutral particles, and they have by now been implemented in a variety of physical systems. Moving towards fully dynamical synthetic gauge fields allows, in addition, for backaction of the particles' motion onto the field. If this results in a time-dependent vector potential, conventional electromagnetism predicts the generation of an electric field. Here, we show how synthetic electric fields for photons arise self-consistently due to the nonlinear dynamics in a driven system. Our analysis is based on optomechanical arrays, where dynamical gauge fields arise naturally from phonon-assisted photon tunneling. We study open, one-dimensional arrays, where synthetic magnetic fields are absent. However, we show that synthetic electric fields can be generated dynamically, which, importantly, suppress photon transport in the array. The generation of these fields depends on the direction of photon propagation, leading to a novel mechanism for a photon diode, inducing nonlinear nonreciprocal transport via dynamical synthetic gauge fields.