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Spin-valley coupling in single-electron bilayer graphene quantum dots.


ABSTRACT: Understanding how the electron spin is coupled to orbital degrees of freedom, such as a valley degree of freedom in solid-state systems, is central to applications in spin-based electronics and quantum computation. Recent developments in the preparation of electrostatically-confined quantum dots in gapped bilayer graphene (BLG) enable to study the low-energy single-electron spectra in BLG quantum dots, which is crucial for potential spin and spin-valley qubit operations. Here, we present the observation of the spin-valley coupling in bilayer graphene quantum dots in the single-electron regime. By making use of highly-tunable double quantum dot devices we achieve an energy resolution allowing us to resolve the lifting of the fourfold spin and valley degeneracy by a Kane-Mele type spin-orbit coupling of ≈ 60 μeV. Furthermore, we find an upper limit of a potentially disorder-induced mixing of the [Formula: see text] and [Formula: see text] states below 20 μeV.

SUBMITTER: Banszerus L 

PROVIDER: S-EPMC8413270 | biostudies-literature | 2021 Sep

REPOSITORIES: biostudies-literature

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Spin-valley coupling in single-electron bilayer graphene quantum dots.

Banszerus L L   Möller S S   Steiner C C   Icking E E   Trellenkamp S S   Lentz F F   Watanabe K K   Taniguchi T T   Volk C C   Stampfer C C  

Nature communications 20210902 1


Understanding how the electron spin is coupled to orbital degrees of freedom, such as a valley degree of freedom in solid-state systems, is central to applications in spin-based electronics and quantum computation. Recent developments in the preparation of electrostatically-confined quantum dots in gapped bilayer graphene (BLG) enable to study the low-energy single-electron spectra in BLG quantum dots, which is crucial for potential spin and spin-valley qubit operations. Here, we present the obs  ...[more]

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