Data Repository - Impact of competing energy scales on the shell-filling sequence in elliptic bilayer graphene quantum dots

Möller, S.;Banszerus, L.;Knothe, A.;L. Valerius;Hecker, K.;E. Icking;K. Watanabe;T. Taniguchi;C. Volk;Stampfer, C.

Description

Data Repository for the Publication: Impact of competing energy scales on the shell-filling sequence in elliptic bilayer graphene quantum dots Abstract: We report on a detailed investigation of the shell-filling sequence in electrostatically defined elliptic bilayer graphene quantum dots (QDs) in the regime of low charge carrier occupation, N < 12, by means of magnetotransport spectroscopy and numerical calculations. We show the necessity of including both short-range electron-electron interaction and wavefunction-dependent valley g-factors for understanding the overall fourfold shell-filling sequence. These factors lead to an additional energy splitting at half-filling of each orbital state and different energy shifts in out-of-plane magnetic fields. Analysis of 31 different BLG QDs reveals that both valley g-factor and electron-electron interaction induced energy splitting increase with decreasing QD size, validating theory. However, we find that the electrostatic charging energy of such gate-defined QDs does not correlate consistently with their size, indicating complex electrostatics. These findings offer significant insights for future BLG QD devices and circuit designs.

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Metrics

Dataset Index

0.5

FAIR Score

79%

Citations

0

Mentions

0

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Publication Details

DOI

Publisher

Zenodo

License

Creative Commons Attribution 4.0 International

Open Access

Assigned Domain

Subfield

Materials Chemistry

Field

Materials Science

Domain

Physical Sciences

Confidence Score

99%

Source

Open Alex

Keywords

Bilayer grapheneQuantum dots2D MaterialsShell-fillingElectron-electron interaction

Normalization Factors

FT

50.00

CTw

1.00

MTw

1.00