Zbigniew Idziaszek
University of Warsaw
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Featured researches published by Zbigniew Idziaszek.
Physical Review Letters | 2010
Zbigniew Idziaszek; Paul S. Julienne
A simple quantum-defect model gives analytic expressions for the complex scattering length and threshold collision rates of ultracold molecules. If the probability of reaction in the short-range part of the collision is high, the model gives universal rate constants for s- and p-wave collisions that are independent of short-range dynamics. This model explains the magnitudes of the recently measured rate constants for collisions of two ultracold 40K87Rb molecules, or an ultracold 40K atom with the 40K87Rb molecule [S. Ospelkaus et al., Science 327, 853 (2010).
Physical Review Letters | 2010
Andrea Micheli; Zbigniew Idziaszek; Guido Pupillo; M. A. Baranov; P. Zoller; Paul S. Julienne
Analytic expressions describe universal elastic and reactive rates of quasi-two-dimensional and quasi-one-dimensional collisions of highly reactive ultracold molecules interacting by a van der Waals potential. Exact and approximate calculations for the example species KRb show that stability and evaporative cooling can be realized for spin-polarized fermions at moderate dipole and trapping strength, whereas bosons or unlike fermions require significantly higher dipole or trapping strengths.
Physical Review A | 2010
Zbigniew Idziaszek; Goulven Quéméner; John L. Bohn; Paul S. Julienne
We present a unified formalism for describing chemical reaction rates of trapped, ultracold molecules. This formalism reduces the scattering to its essential features, namely, a propagation of the reactant molecules through a gauntlet of long-range forces before they ultimately encounter one another, followed by a probability for the reaction to occur once they do. In this way, the electric-field dependence should be readily parametrized in terms of a pair of fitting parameters (along with a C6 coefficient) for each asymptotic value of partial-wave quantum numbers |L,ML� . From this, the electric-field dependence of the collision rates follows automatically. We present examples for reactive species, such as KRb, and nonreactive species, such as RbCs.
Physical Review Letters | 2013
Ulf Bissbort; Daniel Cocks; Antonio Negretti; Zbigniew Idziaszek; Tommaso Calarco; F. Schmidt-Kaler; Walter Hofstetter; R. Gerritsma
We propose and theoretically investigate a hybrid system composed of a crystal of trapped ions coupled to a cloud of ultracold fermions. The ions form a periodic lattice and induce a band structure in the atoms. This system combines the advantages of high fidelity operations and detection offered by trapped ion systems with ultracold atomic systems. It also features close analogies to natural solid-state systems, as the atomic degrees of freedom couple to phonons of the ion lattice, thereby emulating a solid-state system. Starting from the microscopic many-body Hamiltonian, we derive the low energy Hamiltonian, including the atomic band structure, and give an expression for the atom-phonon coupling. We discuss possible experimental implementations such as a Peierls-like transition into a period-doubled dimerized state.
Physical Review Letters | 2013
Krzysztof Jachymski; Micha l Krych; Paul S. Julienne; Zbigniew Idziaszek
We develop a general quantum theory for reactive collisions involving power-law potentials (-1/r(n)) valid from the ultracold up to the high-temperature limit. Our quantum defect framework extends the conventional capture models to include the nonuniversal case when the short-range reaction probability P(re)<1. We present explicit analytical formulas as well as numerical studies for the van der Waals (n=6) and polarization (n=4) potentials. Our model agrees well with recent merged beam experiments on Penning ionization, spanning collision energies from 10 mK to 30 K [Henson et al., Science 338, 234 (2012)].
Physical Review A | 2010
H. Doerk; Zbigniew Idziaszek; Tommaso Calarco
Ultracold collisions of ions with neutral atoms in traps are studied. Recently, ultracold atom-ion systems have become available in experimental setups, where their quantum states can be coherently controlled. This control allows for an implementation of quantum information processing, combining the advantages of charged and neutral particles. The state-dependent dynamics that is a necessary ingredient for quantum computation schemes is provided in this case by the short-range interaction forces that depend on the hyperfine states of both particles. In this work, a theoretical description of spin-state-dependent trapped atom-ion collisions is developed in the framework of a multichannel quantum-defect theory and an effective single-channel model is formulated that reduces the complexity of the problem. Based on this description, a two-qubit phase gate between a
New Journal of Physics | 2011
Zbigniew Idziaszek; Andrea Simoni; Tommaso Calarco; Paul S. Julienne
^{135}\mathrm{Ba}
Physical Review Letters | 2006
Zbigniew Idziaszek; Tommaso Calarco
Physical Review A | 2007
Zbigniew Idziaszek; Tommaso Calarco; P. Zoller
{}^{+}
Physical Review A | 2005
Zbigniew Idziaszek; Tommaso Calarco
ion and a