DocumentCode :
715998
Title :
Generating entanglement between atomic spins with low-noise probing of an optical cavity
Author :
Cox, Kevin C. ; Weiner, Joshua M. ; Greve, Graham P. ; Thompson, James K.
Author_Institution :
Dept. of Phys., Univ. of Colorado, Boulder, CO, USA
fYear :
2015
fDate :
12-16 April 2015
Firstpage :
351
Lastpage :
356
Abstract :
Atomic projection noise limits the ultimate precision of all atomic sensors, including clocks, inertial sensors, magnetometers, etc. The independent quantum collapse of N atoms into a definite state (for example spin up or down) leads to an uncertainty ΔθSQL = 1/√N in the estimate of the quantum phase accumulated during a Ramsey sequence or its many generalizations. This phase uncertainty is referred to as the standard quantum limit. Creating quantum entanglement between the N atoms can allow the atoms to partially cancel each other´s quantum noise, leading to reduced noise in the phase estimate below the standard quantum limit. Recent experiments have demonstrated up to 10 dB of phase noise reduction relative to the SQL by making collective spin measurements. This is achieved by trapping laser-cooled Rb atoms in an optical cavity and precisely measuring the shift of the cavity resonance frequency by an amount that depends on the number of atoms in spin up. Detecting the probe light with high total efficiency reduces excess classical and quantum back-action of the probe. Here we discuss recent progress and a technique for reducing the relative frequency noise between the probe light and the optical cavity, a key requirement for further advances.
Keywords :
cavity resonators; phase noise; quantum entanglement; quantum noise; quantum optics; radiation pressure; Ramsey sequence; atomic projection noise; atomic spins; cavity resonance frequency; low-noise probing; optical cavity; phase noise reduction; phase uncertainty; quantum entanglement; quantum phase; relative frequency noise reduction; standard quantum limit; Atom optics; Atomic beams; Atomic clocks; Atomic measurements; Cavity resonators; Noise; Resonant frequency;
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.2015.7138857
Filename :
7138857
Link To Document :
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