DocumentCode :
715999
Title :
Laser stabilization on velocity dependent nonlinear dispersion of Sr atoms in an optical cavity
Author :
Christensen, Bjarke T. R. ; Schaffer, Stefan A. ; Henriksen, Martin R. ; Westergaard, Philip G. ; Jun Ye ; Thomsen, Jan W.
Author_Institution :
Niels Bohr Inst., Univ. of Copenhagen, Copenhagen, Denmark
fYear :
2015
fDate :
12-16 April 2015
Firstpage :
357
Lastpage :
362
Abstract :
The development of simple and reliable high stability clock lasers is of great importance for future state-of-the-art optical clocks [1]-[5] and for future transportable optical clocks [6], [7]. Further development of clock lasers with better stability has so far been hindered by thermal noise in the reference cavity used for laser stabilization and conventional approaches for improvements may be technically challenging. It has been proposed [8]-[11] to improve the stability and reduce the complexity of state-of-the-art laser frequency stabilization by exploiting cavity QED systems consisting of atoms with a narrow optical transition coupled to a single mode of an optical cavity. The laser stabilization performance of a cavity QED system is affected by a number of system parameters such as the finite temperature of the atoms, the number of involved atoms and the laser power [12]-[14]. However, the dynamics of those elements have not yet been fully explored. Here we present a simple cavity QED system consisting of laser cooled strontium-88 atoms coupled to an optical cavity. We relate measurable quantities to the complex transmission coefficient which relates the input field to the output field. The optimal input power for stabilizing a laser to this system is experimentally determined and the optimal shot-noise-limited linewidth of the system is evaluated to 500 mHz. Furthermore, theoretical shot-noise-limited linewidths of similar cavity QED systems are evaluated for a number of different two electron systems.
Keywords :
atomic clocks; laser cavity resonators; laser cooling; laser stability; quantum electrodynamics; shot noise; strontium; Sr; cavity QED system; clock lasers; complex transmission coefficient; laser cooled strontium-88 atoms; laser stabilization; optical cavity; shot-noise-limited linewidths; velocity dependent nonlinear dispersion; Atom optics; Atomic beams; Atomic clocks; Cavity resonators; Laser noise; Laser stability; Nonlinear optics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Frequency Control Symposium & the European Frequency and Time Forum (FCS), 2015 Joint Conference of the IEEE International
Conference_Location :
Denver, CO
Print_ISBN :
978-1-4799-8865-5
Type :
conf
DOI :
10.1109/FCS.2015.7138858
Filename :
7138858
Link To Document :
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