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Disorder-induced liquid-solid phase coexistence in 2D electron systems

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arxiv 2502.11235 v1 pith:I2VNMXGM submitted 2025-02-16 cond-mat.str-el cond-mat.mes-hall

classification cond-mat.str-elcond-mat.mes-hall
keywords phasecoexistencedisorderelectronexperimentsdensitydifferencedomains
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Recent imaging experiments show a surprisingly robust regime of liquid-solid phase coexistence in a 2D electron system near the quantum melting/freezing transition, with the two phases mixed in mesoscopic domains. Strikingly, the experiments find no noticeable difference in electron density between the liquid and solid domains, which is at odds with both microemulsion scenarios and scenarios in which phase coexistence is driven by fluctuations of a long-ranged disorder potential. Here, we show that such phase coexistence without density difference can be induced by random fluctuations of a short-ranged disorder potential. We further show that disorder tends to stabilize the Wigner Crystal phase to higher densities, which is also consistent with the experiments.

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  1. Spin-triplet paired Wigner crystal stabilized by quantum geometry

    cond-mat.str-el 2026-01 conditional novelty 6.0 of 10

    Berry curvature stabilizes a Wigner crystal built from spin-triplet electron pairs with relative orbital angular momentum m=-1.

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