| Literature DB >> 31386494 |
A Kurzmann1, M Eich1, H Overweg1, M Mangold1, F Herman1, P Rickhaus1, R Pisoni1, Y Lee1, R Garreis1, C Tong1, K Watanabe2, T Taniguchi2, K Ensslin1, T Ihn1.
Abstract
We report ground- and excited-state transport through an electrostatically defined few-hole quantum dot in bilayer graphene in both parallel and perpendicular applied magnetic fields. A remarkably clear level scheme for the two-particle spectra is found by analyzing finite bias spectroscopy data within a two-particle model including spin and valley degrees of freedom. We identify the two-hole ground state to be a spin-triplet and valley-singlet state. This spin alignment can be seen as Hund's rule for a valley-degenerate system, which is fundamentally different from quantum dots in carbon nanotubes, where the two-particle ground state is a spin-singlet state. The spin-singlet excited states are found to be valley-triplet states by tilting the magnetic field with respect to the sample plane. We quantify the exchange energy to be 0.35 meV and measure a valley and spin g factor of 36 and 2, respectively.Entities:
Year: 2019 PMID: 31386494 DOI: 10.1103/PhysRevLett.123.026803
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161