Hole spin resonance and spin-orbit coupling in a silicon metal-oxide-semiconductor field-effect transistor
arXiv:1707.03106 · doi:10.1103/PhysRevLett.119.156802
Abstract
We study hole spin resonance in a p-channel silicon metal-oxide-semiconductor field-effect transistor. In the sub-threshold region, the measured source-drain current reveals a double dot in the channel. The observed spin resonance spectra agree with a model of strongly coupled two-spin states in the presence of a spin-orbit-induced anti-crossing. Detailed spectroscopy at the anti-crossing shows a suppressed spin resonance signal due to spin-orbit-induced quantum state mixing. This suppression is also observed for multi-photon spin resonances. Our experimental observations agree with theoretical calculations.
5 pages and 3 figures for the main text, 6 pages and 5 figures for the appendices
References in corpus (8)
- Surface codes: Towards practical large-scale quantum computation
- Coherent control of a single electron spin with electric fields
- An addressable quantum dot qubit with fault-tolerant control fidelity
- Driven quantum transport on the nanoscale
- Architecture for high-sensitivity single-shot readout and control of the electron spin of individual donors in silicon
- Spin relaxation at the singlet-triplet crossing in a quantum dot
- Pauli Blockade in a Few-Hole PMOS Double Quantum Dot limited by Spin-Orbit Interaction
- The Role of Multilevel Landau-Zener Interference in Extreme Harmonic Generation
Cited by in corpus (5)
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