Engineering a U(1) lattice gauge theory in classical electric circuits [Research Data and Code]

DOI

Abstract: Lattice gauge theories are fundamental to such distinct fields as particle physics, condensed matter, and quantum information science. Their local symmetries enforce the charge conservation observed in the laws of physics. Impressive experimental progress has demonstrated that they can be engineered in table-top experiments using synthetic quantum systems. However, the challenges posed by the scalability of such lattice gauge simulators are pressing, thereby making the exploration of different experimental setups desirable. Here, we realize a U(1) lattice gauge theory with five matter sites and four gauge links in classical electric circuits employing nonlinear elements connecting LC oscillators. This allows for probing previously inaccessible spectral and transport properties in a multi-site system. We directly observe Gauss's law, known from electrodynamics, and the emergence of long-range interactions between massive particles in full agreement with theoretical predictions. Our work paves the way for investigations of increasingly complex gauge theories on table-top classical setups, and demonstrates the precise control of nonlinear effects within metamaterial devices.

Dataset files:

MM-DD: folders with raw data, named by date in 2021. U1 Simulations.ipynb: Numerical simulations. Produces files for U1 Figures.ipynb too. U1 Figures.ipynb: Data analysis for figures appearing in paper. KiCad_U1-block/: Schematic and PCB design. redpitaya-measurements/: Measurement scripts used with Red Pitaya.

To simply retrieve the figures of paper, use the arXiv:2108.01086 source.

Identifier
DOI https://doi.org/10.11588/data/6MEKHI
Metadata Access https://heidata.uni-heidelberg.de/oai?verb=GetRecord&metadataPrefix=oai_datacite&identifier=doi:10.11588/data/6MEKHI
Provenance
Creator Riechert, Hannes ORCID logo; Halimeh, Jad C.; Kasper, Valentin; Bretheau, Landry; Zohar, Erez; Hauke, Philipp; Jendrzejewski, Fred ORCID logo
Publisher heiDATA
Contributor Riechert, Hannes
Publication Year 2022
Rights info:eu-repo/semantics/openAccess
OpenAccess true
Contact Riechert, Hannes (Heidelberg University)
Representation
Resource Type Dataset
Format application/dicom; application/octet-stream; application/gzip; text/x-c; text/x-python; text/plain; charset=US-ASCII; text/markdown; application/x-sh; application/x-ipynb+json
Size 48; 7029; 655; 798; 26857714; 27325420; 26814665; 17669820; 27023733; 27445795; 26325876; 26034821; 26964946; 25604666; 27062972; 27140736; 19604396; 27252781; 26859717; 27276202; 27161343; 27388892; 28289463; 26292872; 27093256; 27286055; 21621846; 25944276; 26193672; 26869490; 17656626; 26118273; 27251147; 24603834; 2796; 1605; 5076; 2979974; 125; 2301; 1563; 2991; 485; 5466; 4729; 1724; 5264; 60; 3705; 854; 3069; 3650; 1362; 5611; 81386005; 30941478; 213; 3674; 9019; 695391; 10031; 3892; 49663; 8200; 3384; 7825300; 2717261; 3100; 1607
Version 1.0
Discipline Natural Sciences; Physics