Temperature-insensitive laser frequency locking near absorption lines.

Rev Sci Instrum

Department of Electrical Engineering, Princeton University, Princeton, New Jersey 08544, USA.

Published: March 2011

Combined magnetically induced circular dichroism and Faraday rotation of an atomic vapor are used to develop a variant of the dichroic atomic vapor laser lock that eliminates lock sensitivity to temperature fluctuations of the cell. Operating conditions that eliminate first-order sensitivity to temperature fluctuations can be determined by low-frequency temperature modulation. This temperature-insensitive gyrotropic laser lock can be accurately understood with a simple model, that is in excellent agreement with observations in potassium vapor at laser frequencies in a 2 GHz range about the 770.1 nm absorption line. The methods can be readily adapted for other absorption lines.

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http://dx.doi.org/10.1063/1.3574221DOI Listing

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