Y. M. Hu

Multi-ion Mach-Zehnder interferometer with artificial nonlinear interactions

Y. M. Hu [1,2,4], W. L. Yang [1], X. Xiao [3,1,4], Mang Feng, Chaohong Lee

Abstract

We show how to implement a Mach-Zehnder interferometry based upon a string of trapped ions with artificial nonlinear interactions. By adiabatically sweeping down/up the coupling strength between two involved internal states of the ions, we could achieve the beam splitting/recombination. Based on current techniques for manipulating trapped ions, we discuss the experimental feasibility of our scheme and analyze some undesired uncertainty under realistic experimental environment.

Franck-Condon Physics in A Single Trapped Ion

Y. M. Hu [1,2], W. L. Yang [1], Y. Y. Xu [1,2], F. Zhou [1,2], L. Chen [1,3], Kelin Gao, Mang Feng, Chaohong Lee

Abstract

We propose how to explore the Franck-Condon (FC) physics via a single ion confined in a spin-dependent potential, formed by the combination of a Paul trap and a magnetic field gradient. The correlation between electronic and vibrational degrees of freedom, called as electron-vibron coupling, is induced by a nonzero gradient. For a sufficiently strong electron-vibron coupling, the FC blockade of low-lying vibronic transitions takes place. We analyze the feasibility of observing the FC physics in a single trapped ion, and demonstrate various potential applications of the ionic FC physics in quantum state engineering and quantum information processing.