English

Fall to the Centre in Atom Traps and Point-Particle EFT for Absorptive Systems

High Energy Physics - Phenomenology 2020-10-22 v2 Quantum Gases Atomic Physics Quantum Physics

Abstract

Polarizable atoms interacting with a charged wire do so through an inverse-square potential, V=g/r2V = - g/r^2. This system is known to realize scale invariance in a nontrivial way and to be subject to ambiguities associated with the choice of boundary condition at the origin, often termed the problem of `fall to the center'. Point-particle effective field theory (PPEFT) provides a systematic framework for determining the boundary condition in terms of the properties of the source residing at the origin. We apply this formalism to the charged-wire/polarizable-atom problem, finding a result that is not a self-adjoint extension because of absorption of atoms by the wire. We explore the RG flow of the complex coupling constant for the dominant low-energy effective interactions, finding flows whose character is qualitatively different when gg is above or below a critical value, gcg_c. Unlike the self-adjoint case, (complex) fixed points exist when g>gcg> g_c, which we show correspond to perfect absorber (or perfect emitter) boundary conditions. We describe experimental consequences for wire-atom interactions and the possibility of observing the anomalous breaking of scale invariance.

Keywords

Cite

@article{arxiv.1804.10324,
  title  = {Fall to the Centre in Atom Traps and Point-Particle EFT for Absorptive Systems},
  author = {Ryan Plestid and C. P. Burgess and D H J O'Dell},
  journal= {arXiv preprint arXiv:1804.10324},
  year   = {2020}
}

Comments

31 pages, 4 figures, minor changes in ordering of sections, new references added

R2 v1 2026-06-23T01:37:37.769Z