Artificial Gauge Fields and Dimensions in a Polariton Hofstadter Ladder

Fuente: arXiv
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Main Authors: Widmann, Simon, Bellmann, Jonas, Düreth, Johannes, Dam, Siddhartha, Mayer, Christian G., Gagel, Philipp, Betzold, Simon, Emmerling, Monika, Mandal, Subhaskar, Banerjee, Rimi, Liew, Timothy C. H., Thomale, Ronny, Höfling, Sven, Klembt, Sebastian
Format: Preprint
Published: 2025
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author Widmann, Simon
Bellmann, Jonas
Düreth, Johannes
Dam, Siddhartha
Mayer, Christian G.
Gagel, Philipp
Betzold, Simon
Emmerling, Monika
Mandal, Subhaskar
Banerjee, Rimi
Liew, Timothy C. H.
Thomale, Ronny
Höfling, Sven
Klembt, Sebastian
author_facet Widmann, Simon
Bellmann, Jonas
Düreth, Johannes
Dam, Siddhartha
Mayer, Christian G.
Gagel, Philipp
Betzold, Simon
Emmerling, Monika
Mandal, Subhaskar
Banerjee, Rimi
Liew, Timothy C. H.
Thomale, Ronny
Höfling, Sven
Klembt, Sebastian
contents Artificial gauge fields allow uncharged particles to mimic the behavior of charged particles subjected to magnetic fields, providing a powerful platform for exploring topological physics. Neutral particles, like photons, are typically unaffected by real magnetic fields. However, it is possible to introduce artificial gauge fields that control the effective dynamics of these neutral particles. Topological exciton-polariton lasers have attracted considerable interest, in part due to the wide range of tunable system parameters, but often require strong magnetic fields to realise propagating topological edge states. Here we show, that by using an artificial gauge field the topological Hall effect in a micron-scale micropillar chain is experimentally realised, exploiting the circular polarisation of polaritons as an artificial dimension. By careful rotational alignment of elliptical micropillars, we introduce an effective plaquette phase that induces strictly polarisation-dependent edge-state propagation, demonstrating non-reciprocal transport of the polariton pseudospins. Our results demonstrate that the dimensionality limitation of topological interface states as well as requirements for strong external magnetic fields in coupled topological laser arrays can be overcome by utilizing polarisation effects and careful engineering of the potential landscape. Our results open new ways towards the implementation of topological polariton lattices and related optically active devices with additional artificial dimension.
format Preprint
id arxiv_https___arxiv_org_abs_2506_13521
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Artificial Gauge Fields and Dimensions in a Polariton Hofstadter Ladder
Widmann, Simon
Bellmann, Jonas
Düreth, Johannes
Dam, Siddhartha
Mayer, Christian G.
Gagel, Philipp
Betzold, Simon
Emmerling, Monika
Mandal, Subhaskar
Banerjee, Rimi
Liew, Timothy C. H.
Thomale, Ronny
Höfling, Sven
Klembt, Sebastian
Optics
Applied Physics
Artificial gauge fields allow uncharged particles to mimic the behavior of charged particles subjected to magnetic fields, providing a powerful platform for exploring topological physics. Neutral particles, like photons, are typically unaffected by real magnetic fields. However, it is possible to introduce artificial gauge fields that control the effective dynamics of these neutral particles. Topological exciton-polariton lasers have attracted considerable interest, in part due to the wide range of tunable system parameters, but often require strong magnetic fields to realise propagating topological edge states. Here we show, that by using an artificial gauge field the topological Hall effect in a micron-scale micropillar chain is experimentally realised, exploiting the circular polarisation of polaritons as an artificial dimension. By careful rotational alignment of elliptical micropillars, we introduce an effective plaquette phase that induces strictly polarisation-dependent edge-state propagation, demonstrating non-reciprocal transport of the polariton pseudospins. Our results demonstrate that the dimensionality limitation of topological interface states as well as requirements for strong external magnetic fields in coupled topological laser arrays can be overcome by utilizing polarisation effects and careful engineering of the potential landscape. Our results open new ways towards the implementation of topological polariton lattices and related optically active devices with additional artificial dimension.
title Artificial Gauge Fields and Dimensions in a Polariton Hofstadter Ladder
topic Optics
Applied Physics
url https://arxiv.org/abs/2506.13521