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    Deconfined quantum critical points in fermionic systems with spin-charge separation

    Niccolò Baldelli1, Arianna Montorsi2, Sergi Julià-Farré1, Maciej Lewenstein1,3, Matteo Rizzi4,5, and Luca Barbiero2

    Phys. Rev. B 113, 165142 – Published 23 April, 2026

    DOI: https://doi.org/10.1103/shfh-584l

    Abstract

    Deconfined quantum critical points are intriguing transition points not predicted by the Landau-Ginzburg-Wilson symmetry-breaking paradigm which are usually identified by the appearance of a continuous phase transition between locally ordered phases. Here, we reveal the presence of deconfined quantum critical points with unexplored properties. Contrary to previously known examples, we show that the phenomenon of spin-charge separation peculiar to interacting low-dimensional fermions can allow for the appearance of partially gapped deconfined quantum critical points. We first infer this point by performing a field theory analysis of generic one-dimensional fermionic systems in the low energy limit. Subsequently, we derive a microscopic model where phase transitions between different locally ordered phases can take place. Here, by performing a numerical analysis we explicitly derive, among others, the gaps, local order parameters and correlation functions behavior, supporting the presence of partially gapped deconfined quantum critical points. Our results thus provide interesting insights on the widely investigated topic of quantum phase transitions.

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