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Main Authors: Beck, Julius, Heinrich, Matthias, Meschede, Marcus J., Drüeke, Helena, Piccioli, Francesco S., Weidemann, Sebastian, Feis, Joshua, Bauer, Dieter, Szameit, Alexander
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2507.12131
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author Beck, Julius
Heinrich, Matthias
Meschede, Marcus J.
Drüeke, Helena
Piccioli, Francesco S.
Weidemann, Sebastian
Feis, Joshua
Bauer, Dieter
Szameit, Alexander
author_facet Beck, Julius
Heinrich, Matthias
Meschede, Marcus J.
Drüeke, Helena
Piccioli, Francesco S.
Weidemann, Sebastian
Feis, Joshua
Bauer, Dieter
Szameit, Alexander
contents The existence of boundary states and their protection against symmetry-preserving perturbations are a hallmark feature of topological systems. While this concept originally emerged in the context of sin-gle-particle phenomena in condensed-matter physics, particle interactions have recently been identi-fied as alternative means to establish topological phases. As a consequence, nonlinear topological insu-lators gained much interest as a model system for many interacting particles. However, as their mean-field model inevitably breaks down for small numbers of particles, to date, topological states composed of only few interacting particles remain experimentally largely unexplored. In our work, we explore the physics of extended interaction-induced two-particle topological states, so-called Dou-blons. We experimentally implement non-local-interactions via non-adiabatic periodic driving and dimensional mapping in an artificial photonic solid. The resonant formation of extended Doublon qua-si-particles at specific local interaction strengths is observed, allowing us to probe the topologically protected motion of these entities through the bulk of the system. Our approach is compatible to a number of established experimental platforms and paves the way for studying topological few-particle phenomena with finite interaction strength.
format Preprint
id arxiv_https___arxiv_org_abs_2507_12131
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Drive-induced Non-local Interactions and Topological Bulk Transport of Extended Doublons
Beck, Julius
Heinrich, Matthias
Meschede, Marcus J.
Drüeke, Helena
Piccioli, Francesco S.
Weidemann, Sebastian
Feis, Joshua
Bauer, Dieter
Szameit, Alexander
Optics
The existence of boundary states and their protection against symmetry-preserving perturbations are a hallmark feature of topological systems. While this concept originally emerged in the context of sin-gle-particle phenomena in condensed-matter physics, particle interactions have recently been identi-fied as alternative means to establish topological phases. As a consequence, nonlinear topological insu-lators gained much interest as a model system for many interacting particles. However, as their mean-field model inevitably breaks down for small numbers of particles, to date, topological states composed of only few interacting particles remain experimentally largely unexplored. In our work, we explore the physics of extended interaction-induced two-particle topological states, so-called Dou-blons. We experimentally implement non-local-interactions via non-adiabatic periodic driving and dimensional mapping in an artificial photonic solid. The resonant formation of extended Doublon qua-si-particles at specific local interaction strengths is observed, allowing us to probe the topologically protected motion of these entities through the bulk of the system. Our approach is compatible to a number of established experimental platforms and paves the way for studying topological few-particle phenomena with finite interaction strength.
title Drive-induced Non-local Interactions and Topological Bulk Transport of Extended Doublons
topic Optics
url https://arxiv.org/abs/2507.12131