Title :
Magnetometer and frequency standard based on coherently prepared thermal alkali atomic vapors
Author :
Affolderbach, Christoph ; Kemp, William ; Knappe, Svenja ; Nagel, Andreas ; Stahler, M. ; Wynands, R.
Author_Institution :
Inst. for Appl. Phys., Bonn Univ., Germany
Abstract :
Summary form only given. We have experimentally investigated the potential of narrow coherent population trapping resonances for precision applications like magnetometry or atomic frequency standards. CPT can be observed in /spl Lambda/ systems where two ground states are coupled to a common excited state by two near-resonant light fields. Effective formation of ground state coherences takes place when the frequency difference of the light fields precisely matches the ground state splitting. This process leads to reduced absorption in the medium ("electromagnetically induced transparency") and thus reduced fluorescence intensity ("dark resonance") at the optical resonance frequency. Extremely narrow dark resonances can be observed when the two light fields have fixed phase and frequency difference and time-of-flight broadening is suppressed by the use of a buffer gas, making this type of system a promising candidate for precision applications. The /spl Lambda/ systems under study here are the D/sub 2/ lines of Cs, /sup 87/Rb and /sup 85/Rb where the ground state hyperfine splittings are 9.2 GHz, 6.8 GHz, and 3.0 GHz, respectively. Thus in a magnetic field the CPT resonance splits into several Zeeman components whose frequency positions are determined by the Breit-Rabi formula.
Keywords :
Zeeman effect; atom-photon collisions; caesium; excited states; fluorescence; frequency standards; ground states; hyperfine structure; isotope effects; magnetometers; radiation pressure; resonant states; rubidium; self-induced transparency; spectral line intensity; /spl Lambda/ systems; /sup 85/Rb; /sup 87/Rb; Breit-Rabi formula; Cs; D/sub 2/ lines; Rb; Zeeman components; alkali atomic vapors; atomic frequency standards; buffer gas; coherent population trapping resonance; coherently prepared thermal atomic vapors; common excited state; dark resonance; electromagnetically induced transparency; extremely narrow dark resonances; fixed phase; frequency difference; frequency positions; frequency standard; ground state coherences; ground state hyperfine splittings; ground state splitting; ground states; light fields; magnetic field; magnetometer standard; magnetometry; narrow coherent population trapping resonances; near-resonant light fields; optical resonance frequency; precision applications; reduced absorption; reduced fluorescence intensity; time-of-flight broadening; Atomic clocks; Electromagnetic wave absorption; Fluorescence; Magnetic resonance; Magnetometers; Optical buffering; Optical coupling; Resonant frequency; Stationary state; Ultraviolet sources;
Conference_Titel :
Quantum Electronics and Laser Science Conference, 2000. (QELS 2000). Technical Digest
Conference_Location :
San Francisco, CA, USA
Print_ISBN :
1-55752-608-7