C. E. Lopez

Deterministic generation of arbitrary symmetric states and entanglement classes

L. Lamata [1,2,3], C. E. Lopez, B. P. Lanyon [4], T. Bastin [5], J. C. Retamal [2,3], E. Solano [1,6]

Abstract

We propose a method to generate arbitrary symmetric states of N qubits, which can be easily associated with their entanglement classes. It is particularly suited to quantum optics systems like trapped ions or superconducting circuits. We encode each qubit in two metastable levels of the system and use a bosonic quantum bus for creating the states. The method is deterministic and relies on a sequence of selective unitary gates upon the qubits within the system coherence time.

Selective Control of the Symmetric Dicke Subspace in Trapped Ions

C. E. Lopez, J. C. Retamal [1], E. Solano [2,3]

Abstract

We propose a method of manipulating selectively the symmetric Dicke subspace in the internal degrees of freedom of N trapped ions. We show that the direct access to ionic-motional subspaces, based on a suitable tuning of motion-dependent AC Stark shifts, induces a two-level dynamics involving previously selected ionic Dicke states. In this manner, it is possible to produce, sequentially and unitarily, ionic Dicke states with increasing excitation number. Moreover, we propose a probabilistic technique to produce directly any ionic Dicke state assuming suitable initial conditions.

Direct measurement of concurrence for atomic two-qubit pure states

G. Romero [1], C. E. Lopez, F. Lastra [1], E. Solano [2,3,1], J. C. Retamal

Abstract

We propose a general scheme to measure the concurrence of an arbitrary two-qubit pure state in atomic systems. The protocol is based on one- and two-qubit operations acting on two available copies of the bipartite system, and followed by a global qubit readout. We show that it is possible to encode the concurrence in the probability of finding all atomic qubits in the ground state. Two possible scenarios are considered: atoms crossing 3D microwave cavities and trapped ion systems.

Effective Quantum Dynamics of Interacting Systems with Inhomogeneous Coupling

C. E. Lopez, H. Christ [2], J. C. Retamal [1], E. Solano [2,3,4]

Abstract

We study the quantum dynamics of a single mode/particle interacting inhomogeneously with a large number of particles and introduce an effective approach to find the accessible Hilbert space where the dynamics takes place. Two relevant examples are given: the inhomogeneous Tavis-Cummings model (e.g., N atomic qubits coupled to a single cavity mode, or to a motional mode in trapped ions) and the inhomogeneous coupling of an electron spin to N nuclear spins in a quantum dot.