T. Calarco
University of Trento
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Publication
Featured researches published by T. Calarco.
Physical Review A | 2000
T. Calarco; E. A. Hinds; Dieter Jaksch; J. Schmiedmayer; J. I. Cirac; P. Zoller
We theoretically study specific schemes for performing a fundamental two-qubit quantum gate via controlled atomic collisions by switching microscopic potentials. In particular we calculate the fidelity of a gate operation for a configuration where a potential barrier between two atoms is instantaneously removed and restored after a certain time. Possible implementations could be based on microtraps created by magnetic and electric fields, or potentials induced by laser light.
Journal of Modern Optics | 2000
Hans J. Briegel; T. Calarco; Dieter Jaksch; J. I. Cirac; P. Zoller
Abstract We develop a method to entangle neutral atoms using cold controlled collisions. We analyse this method in two particular set-ups: optical lattices and magnetic microtraps. Both offer the possibility of performing certain multi-particle operations in parallel. Using this fact, we show how to implement efficient quantum error correction and schemes for fault-tolerant computing.
Physical Review A | 2002
A. Recati; T. Calarco; P. Zanardi; J. Ignacio Cirac; P. Zoller
We propose an all-geometric implementation of quantum computation using neutral atoms in cavity QED. We show how to perform generic single- and two-qubit gates, the latter by encoding a two-atom state onto a single, many-level atom. We compare different strategies to overcome limitations due to cavity imperfections.
Physical Review A | 2001
T. Calarco; J. I. Cirac; P. Zoller
We consider a system of particles in an array of microscopic traps, coupled to each other via electrostatic interaction, and pushed by an external state-dependent force. We show how to implement a two-qubit quantum gate between two such particles with a high fidelity.
Journal of Modern Optics | 2000
T. Calarco; Hans J. Briegel; Dieter Jaksch; J. I. Cirac; P. Zoller
Abstract We review recent proposals for performing entanglement manipulation via cold collisions between neutral atoms. State-dependent, time-varying trapping potentials allow one to control the interaction between atoms, so that conditional phase shifts realizing a universal quantum gate can be obtained with high fidelity. We discuss possible physical implementations with existing experimental techniques, for example optical lattices and magnetic micro-traps.
Physical Review Letters | 2016
A. H. Werner; D. Jaschke; P. Silvi; Martin Kliesch; T. Calarco; Jens Eisert; S. Montangero
Open quantum many-body systems play an important role in quantum optics and condensed matter physics, and capture phenomena like transport, the interplay between Hamiltonian and incoherent dynamics, and topological order generated by dissipation. We introduce a versatile and practical method to numerically simulate one-dimensional open quantum many-body dynamics using tensor networks. It is based on representing mixed quantum states in a locally purified form, which guarantees that positivity is preserved at all times. Moreover, the approximation error is controlled with respect to the trace norm. Hence, this scheme overcomes various obstacles of the known numerical open-system evolution schemes. To exemplify the functioning of the approach, we study both stationary states and transient dissipative behavior, for various open quantum systems ranging from few to many bodies.
Journal of Optics B-quantum and Semiclassical Optics | 2005
U. Dorner; T. Calarco; P. Zoller; Antoine Browaeys
We propose a scheme for quantum logic with neutral atoms stored in an array of holographic dipole traps where the positions of the atoms can be rearranged by using holographic optical tweezers. In particular, this allows for the transport of two atoms to the same well where an external control field is used to perform gate operations via the molecular interaction between the atoms. We show that optimal control techniques allow for the fast implementation of the gates with high fidelity.
European Physical Journal D | 2005
M. A. Cirone; Antonio Negretti; T. Calarco; Peter Krüger; Jörg Schmiedmayer
Abstract.We present a simple scheme for implementing an atomic phase gate using two degrees of freedom for each atom and discuss its realization with cold rubidium atoms on atom chips. We investigate the performance of this collisional phase gate and show that gate operations with high fidelity can be realized in magnetic traps that are currently available on atom chips.
European Physical Journal D | 2005
P. Zoller; Thomas Beth; D. Binosi; R. Blatt; Hans J. Briegel; Dagmar Bruss; T. Calarco; J. I. Cirac; David Deutsch; Jens Eisert; Artur Ekert; Claude Fabre; Nicolas Gisin; P. Grangiere; Markus Grassl; S. Haroche; A. Imamoglu; A. Karlson; Julia Kempe; Leo P. Kouwenhoven; Stefan Kröll; Gerd Leuchs; Maciej Lewenstein; Daniel Loss; Norbert Lütkenhaus; Serge Massar; J.E. Mooij; Martin B. Plenio; E. S. Polzik; Sandu Popescu
Physical Review A | 2004
T. Calarco; U. Dorner; Paul S. Julienne; Carl J. Williams; P. Zoller