Related Experiment Video
Updated: Jul 6, 2026

09:10
Construction and Characterization of External Cavity Diode Lasers for Atomic Physics
Published on: April 24, 2014
Tunable and frequency-stabilized diode laser with a Doppler-free two-photon zeeman lock
Applied Optics
|March 20, 2008
Summary
We demonstrate precise frequency locking for a diode laser using Zeeman modulation on a rubidium two-photon transition. This technique enables stable laser operation with a narrow linewidth and wide tunability without laser frequency modulation.
Area of Science:
- Atomic, Molecular, and Optical Physics
- Laser Spectroscopy
- Quantum Optics
Background:
- Diode lasers are crucial for various applications but require precise frequency control.
- Two-photon transitions offer advantages for laser stabilization due to reduced Doppler shifts.
- Rubidium atoms are a common and well-characterized atomic system for spectroscopic studies.
Purpose of the Study:
- To achieve stable frequency locking of a diode laser to a rubidium two-photon transition.
- To explore the use of Zeeman modulation for laser frequency tuning and stabilization.
- To characterize the performance of the locked laser system in terms of linewidth and tunability.
Main Methods:
- Utilized the Zeeman modulation technique to shift the two-photon transition frequency.
- Employed both alternating current (ac) and direct current (dc) magnetic fields for modulation and frequency shifting.
- Implemented a diode laser system for targeting the two-photon transition in rubidium atoms.
Main Results:
- Successfully achieved frequency locking of the diode laser to the rubidium two-photon transition.
- Obtained a narrow laser linewidth of 500 kHz.
- Demonstrated continuous tunability of the laser frequency over a range of 280 MHz.
- Confirmed no requirement for laser frequency modulation for stabilization.
Conclusions:
- Zeeman modulation is an effective technique for frequency locking diode lasers to atomic transitions.
- The developed method provides a stable and tunable laser source for spectroscopic applications.
- This approach offers an alternative to traditional laser frequency modulation techniques for enhanced stability.

