Title of article :
Nanosecond laser damage resistance of differently prepared semi-finished parts of optical multimode fibers
Author/Authors :
Guido Mann، نويسنده , , Jens Vogel، نويسنده , , Rüdiger Preu?، نويسنده , , Pouya Vaziri، نويسنده , , Mohammadali Zoheidi، نويسنده , , Markus Eberstein، نويسنده , , J?rg Krüger، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Pages :
5
From page :
1096
To page :
1100
Abstract :
Optical multimode fibers are applied in materials processing (e.g. automotive industry), defense, aviation technology, medicine and biotechnology. One challenging task concerning the production of multimode fibers is the enhancement of laser-induced damage thresholds. A higher damage threshold enables a higher transmitted average power at a given fiber diameter or the same power inside a thinner fiber to obtain smaller focus spots. In principle, different material parameters affect the damage threshold. Besides the quality of the preform bulk material itself, the drawing process during the production of the fiber and the preparation of the fiber end surfaces influence the resistance. Therefore, the change of the laser-induced damage threshold of preform materials was investigated in dependence on a varying thermal treatment and preparation procedure. Single and multi-pulse laser-induced damage thresholds of preforms (F300, Heraeus) were measured using a Q-switched Nd:YAG laser at 1064 nm wavelength emitting pulses with a duration of 15 ns, a pulse energy of 12 mJ and a repetition rate of 10 Hz. The temporal and spatial shape of the laser pulses were controlled accurately. Laser-induced damage thresholds in a range from 150 J cm−2 to 350 J cm−2 were determined depending on the number of pulses applied to the same spot, the thermal history and the polishing quality of the samples, respectively.
Keywords :
Optical fibers , Laser ablation , Radiation treatment , Physical radiation damage , Glass transitions , Glasses
Journal title :
Applied Surface Science
Serial Year :
2007
Journal title :
Applied Surface Science
Record number :
1008652
Link To Document :
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