Buffer gas induced collision shift for the $^{88}$Sr $\bf{^1S_0-^3P_1}$ clock transition
Atomic Physics
2015-05-13 v1
Abstract
Precision saturation spectroscopy of the is performed in a vapor cell filled with various rare gas including He, Ne, Ar, and Xe. By continuously calibrating the absolute frequency of the probe laser, buffer gas induced collision shifts of kHz are detected with gas pressure of 1-20 mTorr. Helium gave the largest fractional shift of . Comparing with a simple impact calculation and a Doppler-limited experiment of Holtgrave and Wolf [Phys. Rev. A {\bf 72}, 012711 (2005)], our results show larger broadening and smaller shifting coefficient, indicating effective atomic loss due to velocity changing collisions. The applicability of the result to the optical lattice clock transition is also discussed.
Keywords
Cite
@article{arxiv.0907.0904,
title = {Buffer gas induced collision shift for the $^{88}$Sr $\bf{^1S_0-^3P_1}$ clock transition},
author = {Nobuyasu Shiga and Ying Li and Hiroyuki Ito and Shigeo Nagano and Tetsuya Ido and Katarzyna Bielska and Ryszard S. Trawiński and Roman Ciuryło},
journal= {arXiv preprint arXiv:0907.0904},
year = {2015}
}