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Controlled transport based on multiorbital Aharonov-Bohm photonic caging

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arxiv 2205.13123 v1 pith:YPF63Q7Y submitted 2022-05-26 cond-mat.other physics.optics

classification cond-mat.otherphysics.optics
keywords latticetransportaharonov-bohmallowsbandcagingcontrolcontrolled
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abstract

The induction of synthetic magnetic fields on lattice structures allows to effectively control their localization and transport properties. In this work, we generate effective $\pi$ magnetic fluxes on a multi-orbital diamond lattice, where first ($S$) and second ($P$) order modes effectively interact. We implement a $z$-scan method on femtosecond laser written photonic lattices and experimentally observe Aharonov-Bohm caging for $S$ and $P$ modes, as a consequence of a band transformation and the emergence of a spectrum composed of three degenerated flat bands. As an application, we demonstrate a perfect control of the dynamics, where we translate an input excitation across the lattice in a completely linear and controlled way. Our model, based on a flat band spectrum, allows us to choose the direction of transport depending on the excitation site or input phase.

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