Lukas Weber, Emil Viñas Boström, Martin Claassen, Angel Rubio, Dante M. Kennes
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The scaling exponent can be understood using a generic scaling argument, based on which we predict that the effect may be even stronger in other universality classes. Our microscopic model is based on realistic parameters for two-dimensional magnetic quantum materials and the effect may be within the range of experimental detection. The authors employ Quantum Monte Carlo simulations to study the scaling behavior of the magnetic structure factor and other observables in a 2D quantum critical magnet coupled to a single cavity mode. They find that while the quantum critical point remains unchanged, critical fluctuations are significantly enhanced and a fractional scaling exponent deviates from expectations based on perturbation theory.","PeriodicalId":10540,"journal":{"name":"Communications Physics","volume":" ","pages":"1-11"},"PeriodicalIF":5.4000,"publicationDate":"2023-09-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.nature.com/articles/s42005-023-01359-x.pdf","citationCount":"0","resultStr":"{\"title\":\"Cavity-renormalized quantum criticality in a honeycomb bilayer antiferromagnet\",\"authors\":\"Lukas Weber, Emil Viñas Boström, Martin Claassen, Angel Rubio, Dante M. Kennes\",\"doi\":\"10.1038/s42005-023-01359-x\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Strong light-matter interactions as realized in an optical cavity provide a tantalizing opportunity to control the properties of condensed matter systems. Inspired by experimental advances in cavity quantum electrodynamics and the fabrication and control of two-dimensional magnets, we investigate the fate of a quantum critical antiferromagnet coupled to an optical cavity field. Using unbiased quantum Monte Carlo simulations, we compute the scaling behavior of the magnetic structure factor and other observables. While the position and universality class are not changed by a single cavity mode, the critical fluctuations themselves obtain a sizable enhancement, scaling with a fractional exponent that defies expectations based on simple perturbation theory. The scaling exponent can be understood using a generic scaling argument, based on which we predict that the effect may be even stronger in other universality classes. Our microscopic model is based on realistic parameters for two-dimensional magnetic quantum materials and the effect may be within the range of experimental detection. 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Cavity-renormalized quantum criticality in a honeycomb bilayer antiferromagnet
Strong light-matter interactions as realized in an optical cavity provide a tantalizing opportunity to control the properties of condensed matter systems. Inspired by experimental advances in cavity quantum electrodynamics and the fabrication and control of two-dimensional magnets, we investigate the fate of a quantum critical antiferromagnet coupled to an optical cavity field. Using unbiased quantum Monte Carlo simulations, we compute the scaling behavior of the magnetic structure factor and other observables. While the position and universality class are not changed by a single cavity mode, the critical fluctuations themselves obtain a sizable enhancement, scaling with a fractional exponent that defies expectations based on simple perturbation theory. The scaling exponent can be understood using a generic scaling argument, based on which we predict that the effect may be even stronger in other universality classes. Our microscopic model is based on realistic parameters for two-dimensional magnetic quantum materials and the effect may be within the range of experimental detection. The authors employ Quantum Monte Carlo simulations to study the scaling behavior of the magnetic structure factor and other observables in a 2D quantum critical magnet coupled to a single cavity mode. They find that while the quantum critical point remains unchanged, critical fluctuations are significantly enhanced and a fractional scaling exponent deviates from expectations based on perturbation theory.
期刊介绍:
Communications Physics is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the physical sciences. Research papers published by the journal represent significant advances bringing new insight to a specialized area of research in physics. We also aim to provide a community forum for issues of importance to all physicists, regardless of sub-discipline.
The scope of the journal covers all areas of experimental, applied, fundamental, and interdisciplinary physical sciences. Primary research published in Communications Physics includes novel experimental results, new techniques or computational methods that may influence the work of others in the sub-discipline. We also consider submissions from adjacent research fields where the central advance of the study is of interest to physicists, for example material sciences, physical chemistry and technologies.