English

Spin relaxation in a single-electron graphene quantum dot

Mesoscale and Nanoscale Physics 2022-06-29 v3

Abstract

The relaxation time of a single-electron spin is an important parameter for solid-state spin qubits, as it directly limits the lifetime of the encoded information. Thanks to the low spin-orbit interaction and low hyperfine coupling, graphene and bilayer graphene (BLG) have long been considered promising platforms for spin qubits. Only recently, it has become possible to control single-electrons in BLG quantum dots (QDs) and to understand their spin-valley texture, while the relaxation dynamics have remained mostly unexplored. Here, we report spin relaxation times (T1T_1) of single-electron states in BLG QDs. Using pulsed-gate spectroscopy, we extract relaxation times exceeding 200 μ\mus at a magnetic field of 1.9 T. The T1T_1 values show a strong dependence on the spin splitting, promising even longer T1T_1 at lower magnetic fields, where our measurements are limited by the signal-to-noise ratio. The relaxation times are more than two orders of magnitude larger than those previously reported for carbon-based QDs, suggesting that graphene is a potentially promising host material for scalable spin qubits.

Keywords

Cite

@article{arxiv.2110.13051,
  title  = {Spin relaxation in a single-electron graphene quantum dot},
  author = {L. Banszerus and K. Hecker and S. Möller and E. Icking and K. Watanabe and T. Taniguchi and C. Volk and C. Stampfer},
  journal= {arXiv preprint arXiv:2110.13051},
  year   = {2022}
}

Comments

4 figures 5 pages

R2 v1 2026-06-24T07:10:07.318Z