H. Walther

Nonclassical Imaging for a quantum search of trapped ions

G. S. Agarwal, G. O. Ariunbold, J. von Zanthier [1,4], H. Walther [1,4]

Abstract

We discuss a simple search problem which can be pursued with different methods, either on a classical or on a quantum basis. The system is represented by a chain of trapped ions. The ion to be searched is a member of that chain, consists, however, of an isotopic species different to the others. It is shown that the classical imaging may lead as fast to the final result as the quantum imaging. However, for the discussed case the quantum method gives more flexibility and higher precision when the number of ions considered in the chain is increasing. In addition, interferences are observable even when the distances between the ions is smaller than half a wavelength of the incident light.

Fresnel Representation of the Wigner Function: An Operational Approach

P. Lougovski [1,2], E. Solano [1,3], Z. M. Zhang [1,4], H. Walther [1,2], H. Mack [5], W. P. Schleich [5]

Abstract

We present an operational definition of the Wigner function. Our method relies on the Fresnel transform of measured Rabi oscillations and applies to motional states of trapped atoms as well as to field states in cavities. We illustrate this technique using data from recent experiments in ion traps [D. M. Meekhof et al., Phys. Rev. Lett. 76, 1796 (1996)] and in cavity QED [B. Varcoe et al., Nature 403, 743 (2000)]. The values of the Wigner functions of the underlying states at the origin of phase space are W(0)=+1.75 for the vibrational ground state and W(0)=-1.4 for the one-photon number state. We generalize this method to wave packets in arbitrary potentials.

Low temperature dynamics and laser-cooling of two-species Coulomb chains for quantum logic

G. Morigi [1], H. Walther [1]

Abstract

We study from the point of view of quantum logic the properties of the collective oscillations of a linear chain of ions trapped in a linear Paul trap and composed of two ion species. We discuss extensively sympathetic cooling of the chain and the effect of anharmonicity on laser-cooling and quantum-information processing.