Protocols to measure the non-Abelian Berry phase by pumping a spin qubit through a quantum-dot loop
Abstract
A quantum system constrained to a degenerate energy eigenspace can undergo a nontrival time evolution upon adiabatic driving, described by a non-Abelian Berry phase. This type of dynamics may provide logical gates in quantum computing that are robust against timing errors. A strong candidate to realize such holonomic quantum gates is an electron or hole spin qubit trapped in a spin-orbit-coupled semiconductor, whose twofold Kramers degeneracy is protected by time-reversal symmetry. Here, we propose and quantitatively analyze protocols to measure the non-Abelian Berry phase by pumping a spin qubit through a loop of quantum dots. One of these protocols allows to characterize the local internal Zeeman field directions in the dots of the loop. We expect a near-term realisation of these protocols, as all key elements have been already demonstrated in spin-qubit experiments. These experiments would be important to assess the potential of holonomic quantum gates for spin-based quantum information processing.
Keywords
Cite
@article{arxiv.2308.05455,
title = {Protocols to measure the non-Abelian Berry phase by pumping a spin qubit through a quantum-dot loop},
author = {Baksa Kolok and András Pályi},
journal= {arXiv preprint arXiv:2308.05455},
year = {2025}
}
Comments
11 pages main text, +5 pages appendix and bibliography, 9 figures