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Giant elastoresistance in magic-angle twisted bilayer graphene

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arxiv 2505.10506 v1 pith:OFCHZDWF submitted 2025-05-15 cond-mat.mes-hall cond-mat.str-el

classification cond-mat.mes-hallcond-mat.str-el
keywords elastoresistancestrainanglebilayercorrelatedgraphenelatticemoir
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abstract

Strongly correlated and topological phases in moir\'e materials are exquisitely sensitive to lattice geometry at both atomic and superlattice length scales. Twist angle, pressure, and strain directly modify the lattice, and thus act as highly effective tuning parameters. Here we examine electrical transport in twisted bilayer graphene subjected to continuous uniaxial strain. Near the magic angle ($\approx 1.1^{\circ}$), devices exhibit a pronounced elastoresistance that depends on band filling and temperature, with a gauge factor more than two orders of magnitude larger than that of conventional metals. In selected doping regimes the elastoresistance exhibits a Curie-Weiss-like temperature divergence. We discuss possible microscopic origins, including nematic fluctuations and enhanced electronic entropy from fluctuating isospin moments. Our work establishes uniaxial strain as a versatile probe of correlated physics in a moir\'e material.

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  1. Pseudomagnetotransport in Strained Graphene

    cond-mat.mes-hall 2025-05 conditional novelty 7.0 of 10

    A scaling transformation for strained graphene preserves pseudogauge fields and enables quantum transport simulations showing valley-polarized pseudomagnetic focusing and snake-state oscillations.

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