Frequency-Stabilized Diode Laser with the Zeeman Shift in an Atomic Vapor
Abstract
We demonstrate a robust method of stabilizing a diode laser frequency to an atomic transition. This technique employs the Zeeman shift to generate an antisymmetric signal about a Doppler-broadened atomic resonance, and therefore offers a large recapture range as well as high stability. The frequency of a 780-nm diode laser, stabilized to such a signal in Rb, drifted less than 0.5 MHz peak peak (1 part in 10 9 ) in 38 h. This tunable frequency lock can be constructed inexpensively, requires little laser power, rarely loses lock, and can be extended to other wavelengths by use of different atomic species.
- Publication:
-
Applied Optics
- Pub Date:
- May 1998
- DOI:
- 10.1364/AO.37.003295
- Bibcode:
- 1998ApOpt..37.3295C