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Synergistic correlated states and nontrivial topology in coupled graphene-insulator heterostructures.


ABSTRACT: Graphene has aroused great attention due to the intriguing properties associated with its low-energy Dirac Hamiltonian. When graphene is coupled with a correlated insulating substrate, electronic states that cannot be revealed in either individual layer may emerge in a synergistic manner. Here, we theoretically study the correlated and topological states in Coulomb-coupled and gate-tunable graphene-insulator heterostructures. By electrostatically aligning the electronic bands, charge carriers transferred between graphene and the insulator can yield a long-wavelength electronic crystal at the interface, exerting a superlattice Coulomb potential on graphene and generating topologically nontrivial subbands. This coupling can further boost electron-electron interaction effects in graphene, leading to a spontaneous bandgap formation at the Dirac point and interaction-enhanced Fermi velocity. Reciprocally, the electronic crystal at the interface is substantially stabilized with the help of cooperative interlayer Coulomb coupling. We propose a number of substrate candidates for graphene to experimentally demonstrate these effects.

SUBMITTER: Lu X 

PROVIDER: S-EPMC10492827 | biostudies-literature | 2023 Sep

REPOSITORIES: biostudies-literature

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Synergistic correlated states and nontrivial topology in coupled graphene-insulator heterostructures.

Lu Xin X   Zhang Shihao S   Wang Yaning Y   Gao Xiang X   Yang Kaining K   Guo Zhongqing Z   Gao Yuchen Y   Ye Yu Y   Han Zheng Z   Liu Jianpeng J  

Nature communications 20230909 1


Graphene has aroused great attention due to the intriguing properties associated with its low-energy Dirac Hamiltonian. When graphene is coupled with a correlated insulating substrate, electronic states that cannot be revealed in either individual layer may emerge in a synergistic manner. Here, we theoretically study the correlated and topological states in Coulomb-coupled and gate-tunable graphene-insulator heterostructures. By electrostatically aligning the electronic bands, charge carriers tr  ...[more]

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