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Superconductivity in metallic twisted bilayer graphene stabilized by WSe2
Harpreet Singh Arora1,2, Robert Polski1,2, Yiran Zhang1,2,3
1T. J. Watson Laboratory of Applied Physics, California Institute of Technology, Pasadena, CA, USA.
Nature
|July 17, 2020
Summary
Adding a tungsten diselenide monolayer to twisted bilayer graphene (TBG) stabilizes superconductivity at smaller angles. This finding clarifies the origins of superconductivity in TBG and enables engineering of novel quantum phases.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Quantum Materials
Background:
- Magic-angle twisted bilayer graphene (TBG) exhibits diverse correlated electronic phases, including superconductivity.
- The emergence and relationship of these phases are sensitive to microscopic details and the dielectric environment.
- Superconductivity in TBG has been primarily observed near the magic angle (~1.1 degrees).
Purpose of the Study:
- To investigate the effect of incorporating a transition metal dichalcogenide (TMD) layer on the electronic properties of TBG.
- To stabilize superconductivity in TBG at twist angles significantly smaller than the magic angle.
- To explore the role of spin-orbit coupling in proximity-induced effects in TBG.
Main Methods:
- Fabrication of twisted bilayer graphene encapsulated with hexagonal boron nitride and a monolayer of tungsten diselenide (WSe2).
- Electrical transport measurements across a range of twist angles, electron densities, and magnetic fields.
- Analysis of signatures of superconductivity, weak antilocalization, and spin-valley symmetry breaking.
Main Results:
- Superconductivity is stabilized in TBG at twist angles as low as 0.79 degrees, well below the magic angle.
- Superconductivity is observed even when TBG exhibits metallic behavior across all electron densities.
- Evidence of weak antilocalization and broken spin-valley symmetry suggests proximity-induced spin-orbit coupling from WSe2.
Conclusions:
- The dielectric environment, specifically the presence of WSe2, plays a crucial role in stabilizing superconductivity in TBG.
- The findings provide constraints for theoretical models explaining superconductivity in TBG.
- This work opens new pathways for engineering quantum phenomena in moiré heterostructures.
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