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Machine learner optimization of optical nanofiber-based dipole traps for cold $^{87}$Rb atoms

Atomic Physics 2024-06-19 v2 Quantum Physics

Abstract

In two-color optical nanofiber-based dipole traps for cold alkali atoms, the trap efficiency depends on the wavelength and intensity of light in the evanescent field, and the initial laser-cooling process. Typically, no more than one atom can be trapped per trapping site. Improving the trapping efficiency can increase the number of filled trapping sites, thereby increasing the optical depth. Here, we report on the implementation of an in-loop stochastic artificial neural network machine learner to trap 87^{87}Rb atoms in an uncompensated two-color evanescent field dipole trap by optimizing the absorption of a near-resonant, nanofiber-guided, probe beam. By giving the neural network control of the laser cooling process, we observe an increase in the number of dipole-trapped atoms by \sim 50%, a small decrease in their average temperature from 150 μ\muK to 140 μ\muK, and an increase in peak optical depth by 70%. The machine learner is able to quickly and effectively explore the large parameter space of the laser cooling control to find optimal parameters for loading the dipole traps. The increased number of atoms should facilitate studies of collective atom-light interactions mediated via the evanescent field.

Keywords

Cite

@article{arxiv.2110.03931,
  title  = {Machine learner optimization of optical nanofiber-based dipole traps for cold $^{87}$Rb atoms},
  author = {Ratnesh K. Gupta and Jesse L. Everett and Aaron D. Tranter and René Henke and Vandna Gokhroo and Ping Koy Lam and Síle Nic Chormaic},
  journal= {arXiv preprint arXiv:2110.03931},
  year   = {2024}
}

Comments

12 pages, 5 figures