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Simulating high-temperature superconductivity in moir\'e WSe2
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Simulating high-temperature superconductivity in moir\'e WSe2
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The emergence of high transition temperature (Tc) superconductivity in strongly correlated materials remains a major unsolved problem in physics. High-Tc materials, such as cuprates, are generally complex and not easily tunable, making theoretical modelling difficult. Although the Hubbard model--a simple theoretical model of interacting electrons on a lattice--is believed to capture the essential physics of high-Tc materials, obtaining accurate solutions of the model, especially in the relevant regime of moderate correlation, is challenging. The recent demonstration of robust superconductivity in moir\'e WSe2, whose low-energy electronic bands can be described by the Hubbard model and are highly tunable, presents a new platform for tackling the high-Tc problem. Here, we tune moir\'e WSe2 bilayers to the moderate correlation regime through the twist angle and map the phase diagram around one hole per moir\'e unit cell (v = 1) by electrostatic gating and electrical transport and magneto-optical measurements. We observe a range of high-Tc phenomenology, including an antiferromagnetic insulator at v = 1, superconducting domes upon electron and hole doping, and unusual metallic states at elevated temperatures including strange metallicity. The highest Tc occurs adjacent to the Mott transition, reaching about 6% of the effective Fermi temperature. Our results establish a new material system based on transition metal dichalcogenide (TMD) moir\'e superlattices that can be used to study high-Tc superconductivity in a highly controllable manner and beyond.
Forward citations
Cited by 4 Pith papers
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Interference-Enhanced Large Electron-Phonon Coupling from Raman-active Breathing Modes in Moir\'e Semiconductors
An interference selection rule selects reconstruction-matched breathing modes for strong EPC in moiré TMDs, peaking at large twist angles near observed superconductivity.
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Multi-Q spin-valley order in twisted WSe2
At ν=1 in 3.65°-twisted WSe2, Hartree-Fock predicts that the 120° antiferromagnet gives way to coplanar or non-coplanar multi-Q magnetic order with four ordering wavevectors and soft M-point spin fluctuations.
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Wilson-Loop-Ideal Bands and General Idealization
Introduces Wilson-loop-ideal bands saturating the quantum metric Wilson-loop bound and a general monotonic flow construction applied to moiré models to achieve low-error ideal states for correlated physics.
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Angle evolution of the superconducting phase diagram in twisted bilayer WSe2
Superconductivity in twisted WSe2 evolves smoothly with twist angle and stays proximal to a presumed antiferromagnetic Fermi surface reconstruction, independent of Van Hove singularity or half band insulator.
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