Xin-Ding Zhang

Detecting unambiguously non-Abelian geometric phases with trapped ions

Xin-Ding Zhang [1], Z. D. Wang [2], Liang-Bin Hu [1], Zhi-Ming Zhang [3], Shi-Liang Zhu [1]

Abstract

We propose for the first time an experimentally feasible scheme to disclose the noncommutative effects induced by a light-induced non-Abelian gauge structure with trapped ions. Under an appropriate configuration, a true non-Abelian gauge potential naturally arises in connection with the geometric phase associated with two degenerated dark states in a four-state atomic system interacting with three pulsed laser fields. We show that the population in atomic state at the end of a composed path formed by two closed loops $C_1$ and $C_2$ in the parameter space can be significantly different from the composed counter-ordered path. This population difference is directly induced by the noncommutative feature of non-Abelian geometric phases and can be detected unambiguously with current technology.

Physical implementation of holonomic quantum computation in decoherence-free subspaces with trapped ions

Xin-Ding Zhang [1], Q. Zhang, Z. D. Wang [2]

Abstract

We propose a feasible scheme to achieve holonomic quantum computation in a decoherence-free subspace (DFS) with trapped ions. By the application of appropriate bichromatic laser fields on the designated ions, we are able to construct two noncommutable single-qubit gates and one controlled-phase gate using the holonomic scenario in the encoded DFS.