Controlling Synthetic Spin-Orbit Coupling in a Silicon Quantum Dot with Magnetic Field
Abstract
Tunable synthetic spin-orbit coupling (s-SOC) is one of the key challenges in various quantum systems, such as ultracold atomic gases, topological superconductors, and semiconductor quantum dots. Here we experimentally demonstrate controlling the s-SOC by investigating the anisotropy of spin-valley resonance in a silicon quantum dot. As we rotate the applied magnetic field in-plane, we find a striking nonsinusoidal behavior of resonance amplitude that distinguishes s-SOC from the intrinsic spin-orbit coupling (i-SOC), and associate this behavior with the previously overlooked in-plane transverse magnetic field gradient. Moreover, by theoretically analyzing the experimentally measured s-SOC field, we predict the quality factor of the spin qubit could be optimized if the orientation of the in-plane magnetic field is rotated away from the traditional working point.
Cite
@article{arxiv.2012.14636,
title = {Controlling Synthetic Spin-Orbit Coupling in a Silicon Quantum Dot with Magnetic Field},
author = {Xin Zhang and Yuan Zhou and Rui-Zi Hu and Rong-Long Ma and Ming Ni and Ke Wang and Gang Luo and Gang Cao and Gui-Lei Wang and Peihao Huang and Xuedong Hu and Hong-Wen Jiang and Hai-Ou Li and Guang-Can Guo and Guo-Ping Guo},
journal= {arXiv preprint arXiv:2012.14636},
year = {2021}
}
Comments
26 pages, 10 figures