Waveguide QED toolboxes for universal quantum matter
Y. Dong, J. Taylor, Y. S. Lee, H. R. Kong, K. S. Choi

TL;DR
This paper develops a quantum optics toolbox for creating universal quantum matter using atoms near 1D photonic crystal waveguides, enabling simulation of complex many-body models and gauge theories with potential for quantum information applications.
Contribution
It introduces a novel platform combining nanophotonics and cold atoms to realize universal 2-local Hamiltonians and dynamical gauge fields, expanding quantum simulation capabilities.
Findings
Synthesizes analog quantum materials with 2-local Hamiltonian graphs.
Develops a microscopic theory for universal quantum simulation.
Proposes diagnostic tools for extracting conformal data from correlators.
Abstract
An exciting frontier in quantum information science is the realization and control of complex quantum many-body systems. Hybrid nanophotonic system with cold atoms has emerged as the paradigmatic platform for engineering long-range spin models from the bottom up, exploiting their modal geometry and group dispersion for tailored interactions. An important challenge is the physical limitation imposed by the photonic bath, constraining the types of local Hamiltonians that decompose the available physical models and restricting the spatial dimensions to that of the dielectric media. However, at the nanoscopic scale, atom-field interaction inherently accompanies significant driven-dissipative quantum forces that may be tamed as a new form of a mediator for controlling the atomic internal states. Here, we formulate a quantum optics toolbox for constructing a universal quantum matter with…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum Information and Cryptography · Neural Networks and Reservoir Computing
