Enhanced superconductivity through virtual tunneling in Bernal bilayer graphene coupled to WSe$_2$
ORAL
Abstract
Motivated by a recent experiment [arXiv:2205.05087], we investigate a possible mechanism that enhances superconductivity in hole-doped Bernal bilayer graphene due to a proximate WSe$_2$ monolayer. We show that the virtual tunneling between WSe$_2$ and Bernal bilayer graphene, which is known to induce Ising spin-orbit coupling, can generate an additional attraction between two holes, providing a potential explanation for enhancing superconductivity in Bernal bilayer graphene. Using the microscopic interlayer tunneling, we derive the Ising spin-orbit coupling and the effective attraction as functions of the twist angle between Bernal bilayer graphene and WSe$_2$ monolayer. Our theory provides an intuitive and physical explanation for the intertwined relation between Ising spin-orbit coupling and superconductivity enhancement, which should motivate future studies.
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Publication: Yang-Zhi Chou, Fengcheng Wu, Sankar Das Sarma, https://arxiv.org/abs/2206.09922
Presenters
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Yang-Zhi Chou
University of Maryland, College Park
Authors
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Yang-Zhi Chou
University of Maryland, College Park
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Fengcheng Wu
Wuhan University