English

Three-State Feshbach Resonances Mediated By Second-Order Couplings

Atomic Physics 2008-02-21 v2 Chemical Physics

Abstract

We present an analytical study of three-state Feshbach resonances induced by second-order couplings. Such resonances arise when the scattering amplitude is modified by the interaction with a bound state that is not directly coupled to the scattering state containing incoming flux. Coupling occurs indirectly through an intermediate state. We consider two problems: (i) the intermediate state is a scattering state in a distinct open channel; (ii) the intermediate state is an off-resonant bound state in a distinct closed channel. The first problem is a model of electric-field-induced resonances in ultracold collisions of alkali metal atoms [Phys. Rev. A 75, 032709 (2007)] and the second problem is relevant for ultracold collisions of complex polyatomic molecules, chemical reaction dynamics, photoassociation of ultracold atoms, and electron - molecule scattering. Our analysis yields general expressions for the energy dependence of the T-matrix elements modified by three-state resonances and the dependence of the resonance positions and widths on coupling amplitudes for the weak-coupling limit. We show that the second problem can be generalized to describe resonances induced by indirect coupling through an arbitrary number of sequentially coupled off-resonant bound states and analyze the dependence of the resonance width on the number of the intermediate states.

Keywords

Cite

@article{arxiv.0708.2638,
  title  = {Three-State Feshbach Resonances Mediated By Second-Order Couplings},
  author = {Christopher J. Hemming and Roman V. Krems},
  journal= {arXiv preprint arXiv:0708.2638},
  year   = {2008}
}

Comments

27 pages, 4 figures; added a reference; journal reference/DOI refer to final published version, which is a shortened and modified version of this preprint

R2 v1 2026-06-21T09:08:54.376Z