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Interlayer electron-hole friction in tunable twisted bilayer graphene semimetal

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arxiv 2208.05659 v1 pith:UXIKLNDY submitted 2022-08-11 cond-mat.mes-hall

Interlayer electron-hole friction in tunable twisted bilayer graphene semimetal

classification cond-mat.mes-hall
keywords charge-neutralfrictionbilayerconductiondeviceelectron-holegraphenesa-tbg
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Charge-neutral conducting systems represent a class of materials with unusual properties governed by electron-hole (e-h) interactions. Depending on the quasiparticles' statistics, band structure, and device geometry these semimetallic phases of matter can feature unconventional responses to external fields that often defy simple interpretations in terms of single-particle physics. Here we show that small-angle twisted bilayer graphene (SA-TBG) offers a highly-tunable system in which to explore interactions-limited electron conduction. By employing a dual-gated device architecture we tune our devices from a non-degenerate charge-neutral Dirac fluid to a compensated two-component e-h Fermi liquid where spatially separated electrons and holes experience strong mutual friction. This friction is revealed through the T^2 resistivity that accurately follows the e-h drag theory we develop. Our results provide a textbook illustration of a smooth transition between different interaction-limited transport regimes and clarify the conduction mechanisms in charge-neutral SA-TBG.

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