English

Universal relations between atomic dipolar relaxation and van der Waals interaction

Quantum Gases 2021-01-28 v1

Abstract

Dipolar relaxation happens when one or both colliding atoms flip their spins exothermically inside a magnetic (BB) field. This work reports precise measurements of dipolar relaxation in a Bose-Einstein condensate of ground state 87^{87}Rb atoms together with in-depth theoretical investigations. Previous perturbative treatments fail to explain our observations except at very small BB-fields. By employing quantum defect theory based on analytic solutions of asymptotic van der Waals interaction C6/R6-C_6/R^6 (RR being interatomic spacing), we significantly expand the applicable range of perturbative treatment. We find the BB-dependent dipolar relaxation lineshapes are largely universal, determined by the coefficient C6C_6 and the associated ss-wave scattering lengths asca_{\rm sc} of the states before and after spin flips. This universality, which applies generally to other atomic species as well, implicates potential controls of dipolar relaxation and related cold chemical reactions by tuning asca_{\rm sc}.

Keywords

Cite

@article{arxiv.2101.11323,
  title  = {Universal relations between atomic dipolar relaxation and van der Waals interaction},
  author = {Yuan-Gang Deng and Yi-Quan Zou and Gao-Ren Wang and Qi Liu and Su Yi and Meng Khoon Tey and Li You},
  journal= {arXiv preprint arXiv:2101.11323},
  year   = {2021}
}

Comments

6 pages, 4 figures

R2 v1 2026-06-23T22:34:47.925Z