DocumentCode :
1348546
Title :
Fabrication of Polymer Waveguides by Laser Ablation Using a 355 nm Wavelength Nd:YAG Laser
Author :
Zakariyah, Shefiu S. ; Conway, Paul P. ; Hutt, David A. ; Selviah, David R. ; Wang, Kai ; Rygate, Jeremy ; Calver, Jonathan ; Kandulski, Witold
Author_Institution :
Wolfson Sch. of Mech. & Manuf. Eng., Loughborough Univ., Loughborough, UK
Volume :
29
Issue :
23
fYear :
2011
Firstpage :
3566
Lastpage :
3576
Abstract :
The demand for optical waveguides integrated into Printed Circuit Boards (PCBs) is increasing as the limitations of copper interconnects for greater than 10 Gb/s data rates are being reached. Optical polymer materials offer a good solution due to their relatively low cost and compatibility with traditional PCB manufacturing processes. Laser ablation is one method of manufacture, for which excimer lasers have been used, but UV Nd:YAG (Neodymium-doped Yttrium Aluminium Garnet) lasers are an attractive alternative due to their widespread use within the PCB industry for drilling vias. In this paper, 355 nm, 60 ns pulse length UV Nd:YAG laser ablation of Truemode™ acrylate-based optical polymer was investigated. The UV Nd:YAG laser was found to be able to ablate the polymer efficiently and the effects of laser ablation power and pulse repetition frequency (PRF) on depth of ablation were studied and used to determine preferred settings. 45 μm × 45 μm multimode optical waveguides were fabricated to demonstrate the process and optical loss measurements were carried out. These measurements demonstrated that the structures were able to transmit light at the data communications wavelength of 850 nm (NIR), but further work is required to reduce the level of loss. The use of UV Nd:YAG as a possible alternative to excimer for laser micromachining would facilitate the rapid deployment of the optical technology within the PCB industry.
Keywords :
infrared spectra; integrated optoelectronics; laser ablation; laser beam machining; micromachining; optical fabrication; optical loss measurement; optical polymers; optical waveguides; printed circuits; copper interconnects; data communication wavelength; excimer lasers; integrated printed circuit boards; laser ablation; laser micromachining; laser wavelength; light transmission; multimode optical waveguides; neodymium-doped yttrium aluminium garnet lasers; optical loss measurements; pulse repetition frequency; truemode acrylate-based optical polymer; wavelength 355 nm; wavelength 850 nm; Laser ablation; Optical device fabrication; Optical polymers; Optical waveguides; Power lasers; Waveguide lasers; High bit rate; PCB; UV Nd:YAG; interconnection; laser ablation; optical backplane; optical circuit board; optical waveguides; polymer;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2011.2171318
Filename :
6043775
Link To Document :
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