4.6 Article

Spatial structure of magnetic polarons in strongly interacting antiferromagnets

期刊

PHYSICAL REVIEW B
卷 104, 期 15, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.104.155136

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  1. Danish National Research Foundation through the Center of Excellence CCQ [DNRF156]

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The article discusses the importance of understanding the properties of mobile impurities in quantum magnets for strongly correlated materials and high-temperature superconductivity physics, particularly focusing on the motion of hole-like defects through an antiferromagnet. It presents a nonperturbative theoretical approach to describe the microscopic properties of magnetic polarons and reveals qualitative differences from previous prediction schemes in the spatial structure of polarons in the strongly interacting regime.
The properties of mobile impurities in quantum magnets are fundamental for our understanding of strongly correlated materials and may play a key role in the physics of high-temperature superconductivity. Hereby, the motion of hole-like defects through an antiferromagnet has been of particular importance. It creates magnetic frustrations that lead to the formation of a quasiparticle, whose complex structure continues to pose substantial challenges to theory and numerical simulations. In this article, we develop a nonperturbative theoretical approach to describe the microscopic properties of such magnetic polarons. Based on the self-consistent Born approximation, which is provenly accurate in the strong-coupling regime, we obtain a complete description of the polaron wave function by solving a set of Dyson-like equations that permit to compute relevant spin-hole correlation functions. We apply this new method to analyze the spatial structure of magnetic polarons in the strongly interacting regime and find qualitative differences from predictions of previously applied truncation schemes. Our calculations reveal a remarkably high spatial symmetry of the polaronic magnetization cloud and a surprising misalignment between its orientation and the polaron crystal momentum. The developed framework opens up an approach to the microscopic properties of doped quantum magnets and will enable detailed analyses of ongoing experiments based on cold-atom quantum simulations of the Fermi-Hubbard model.

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