Thomas Coudreau

Electric field noise above surfaces: a model for heating rate scaling law in ion traps

Romain Dubessy, Thomas Coudreau, Luca Guidoni

Abstract

We present a model for the scaling laws of the electric field noise spectral density as a function of the distance, $d$, above a conducting surface. Our analytical approach models the patch potentials by introducing a correlation length, $ζ$, of the electric potential on the surface. The predicted scaling laws are in excellent agreement with two different classes of experiments (cold trapped ions and cantilevers), that span at least four orders of magnitude of $d$. According to this model, heating rate in miniature ion traps could be greatly reduced by proper material engineering.

Photoionisation loading of large Sr+ ion clouds with ultrafast pulses

Sébastien Removille, Romain Dubessy, Quentin Glorieux, Samuel Guibal, Thomas Coudreau, Luca Guidoni, Jean-Pierre Likforman

Abstract

This paper reports on photoionisation loading based on ultrafast pulses of singly-ionised strontium ions in a linear Paul trap. We take advantage of an autoionising resonance of Sr neutral atoms to form Sr+ by two-photon absorption of femtosecond pulses at a wavelength of 431nm. We compare this technique to electron-bombardment ionisation and observe several advantages of photoionisation. It actually allows the loading of a pure Sr+ ion cloud in a low radio-frequency voltage amplitude regime. In these conditions up to 4x10^4 laser-cooled Sr+ ions were trapped.

Topologically decoherence-protected qubits with trapped ions

Pérola Milman, Wilfried Maineult, Samuel Guibal, Luca Guidoni, Benoît Douçot, Lev Ioffe, Thomas Coudreau

Abstract

We show that trapped ions can be used to simulate a highly symmetrical Hamiltonian with eingenstates naturally protected against local sources of decoherence. This Hamiltonian involves long range coupling between particles and provides a more efficient protection than nearest neighbor models discussed in previous works. Our results open the perspective of experimentally realizing in controlled atomic systems, complex entangled states with decoherence times up to nine orders of magnitude longer than isolated quantum systems.

Feasibility of a quantum memory for continuous variables based on trapped ions

Thomas Coudreau [1,2], Frédéric Grosshans, Samuel Guibal [1], Luca Guidoni [1]

Abstract

We propose to use a large cloud of cold trapped ions as a medium for quantum optics and quantum information experiments. Contrary to most recent realizations of qubit manipulation based on a small number of trapped and cooled ions, we study the case of traps containing a macroscopic number of ions. We consider in particular the implementation of a quantum memory for quantum information stored in continuous variables and study the impact of the relevant physical parameters on the expected performances of the system.