Spin-valley locking for in-gap quantum dots in a MoS2 transistor
arXiv:2306.13542 · doi:10.1021/acs.nanolett.3c01779
Abstract
Spins confined to atomically-thin semiconductors are being actively explored as quantum information carriers. In transition metal dichalcogenides (TMDCs), the hexagonal crystal lattice gives rise to an additional valley degree of freedom with spin-valley locking and potentially enhanced spin life- and coherence times. However, realizing well-separated single-particle levels, and achieving transparent electrical contact to address them has remained challenging. Here, we report well-defined spin states in a few-layer MoS transistor, characterized with a spectral resolution of eV at ~mK. Ground state magnetospectroscopy confirms a finite Berry-curvature induced coupling of spin and valley, reflected in a pronounced Zeeman anisotropy, with a large out-of-plane -factor of . A finite in-plane -factor () allows us to quantify spin-valley locking and estimate the spin-orbit splitting eV. The demonstration of spin-valley locking is an important milestone towards realizing spin-valley quantum bits.
7 pages, 3 figures
References in corpus (5)
- Semiconductor Spin Qubits
- Electronic properties of single-layer and multilayer transition metal dichalcogenides ( Mo, W and S, Se)
- Resonant tunnelling features in the transport spectroscopy of quantum dots
- Gate controlled quantum dots in monolayer WSe2
- Spectroscopy of using Energy-Tunable Defect-Embedded Quantum Dots
Cited by in corpus (5)
- Spin-Valley Protected Kramers Pair in Bilayer Graphene
- Symmetry breaking and spin-orbit coupling for individual vacancy-induced in-gap states in MoS2 monolayers
- Interacting holes in a gated WSe quantum channel: valley correlations and zigzag Wigner crystal
- Electrically tunable MoSe/WSe heterostructure-based quantum dot
- Orbitally resolved single-photon emission from an individual atomic vacancy center in a semiconductor