Thermally Stable, Low Loss Optical Silicones: A Key Enabler for Electro-Optical Printed Circuit Boards

被引:20
作者
John, Ranjith Samuel E. [1 ]
Amb, Chad M. [1 ]
Swatowski, Brandon W. [1 ]
Weidner, W. Ken [1 ]
Halter, Markus [2 ]
Lamprecht, Tobias [2 ]
Betschon, Felix [2 ]
机构
[1] Dow Corning Corp, Midland, MI 48686 USA
[2] Variooptics AG, Heiden, Switzerland
关键词
Electro-optical printed circuit boards (EOCBs); multimode waveguides; optical interconnects; optical silicones; polysiloxanes; WAVE-GUIDES; INTERCONNECTS; FABRICATION;
D O I
10.1109/JLT.2014.2358794
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We report the development and characterization of a low loss polymer waveguide material with a polysiloxane backbone for enabling the new generation electrooptical printed circuit boards (PCBs). The polymer was designed to have low optical loss of < 0.05 dB/cm at 850 nm and low residual stress to withstand the harsh reliability requirements during PCB integration. The ther-momechanical properties of the polymer were tuned to exhibit a residual stress of similar to 1 MPa over a temperature range of 25 degrees C to 200 degrees C in ambient air. Multimode polymer waveguides were fabricated using the polysiloxane polymer and embedded in a six-layer PCB architecture that was subjected to lamination, through-hole via drilling, plating, and IPC shock test (immersion) in solder bath at 288 degrees C. Eight channels of multimode polymer waveguide spirals of length 1.2 m were fabricated and the insertion loss measured after waveguide fabrication, lamination, and solder reflow. The deviation in insertion loss as a function of the PCBfabrication process was less than 3% with final insertion loss after solder reflow being 0.052 + / - 0.002 dB/cm. This finding presents an optical waveguide material which when embedded in a PCB fabricated using an industry standard process meets reliability requirements while maintaining optical performance.
引用
收藏
页码:814 / 819
页数:6
相关论文
共 23 条
[1]  
Ando W., 2001, SILICON CONTAINING P
[2]  
Bamiedakis N., 2014, CLEO SAN JOS CA US
[3]   Cost-Effective Multimode Polymer Waveguides for High-Speed On-Board Optical Interconnects [J].
Bamiedakis, Nikolaos ;
Beals, Joseph, IV ;
Penty, Richard V. ;
White, Ian H. ;
DeGroot, Jon V., Jr. ;
Clapp, Terry V. .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 2009, 45 (04) :415-424
[4]  
Byung Sup R., 2008, IEEE PHOTONIC TECH L, V20, P964
[5]   Fabrication of Fully Embedded Board-level Optical Interconnects and Optoelectronic Printed Circuit Boards [J].
Chang, C. C. ;
Chang, C. J. ;
Lau, John H. ;
Chang, Al ;
Tang, Tom ;
Chiang, Steve ;
Lee, Maurice ;
Tseng, T. J. ;
Wei, Tan Chee ;
Shiah, Lim Li ;
Jie, Yap Guan ;
Teo, Calvin ;
Chai, Joey .
2009 11TH ELECTRONICS PACKAGING TECHNOLOGY CONFERENCE (EPTC 2009), 2009, :973-+
[6]   Development of Versatile Polymer Waveguide Flex Technology for Use in Optical Interconnects [J].
Dangel, Roger ;
Horst, Folkert ;
Jubin, Daniel ;
Meier, Norbert ;
Weiss, Jonas ;
Offrein, Bert J. ;
Swatowski, Brandon W. ;
Amb, Chad M. ;
DeShazer, David J. ;
Weidner, W. Ken .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2013, 31 (24) :3915-3926
[7]  
Freund L.B., 2008, Thin Film Materials-Stress, Defect Formation and Surface Evolution
[8]   High performance polynorbornene optical waveguide for Opto-Electric interconnections [J].
Fujiwara, M. ;
Shirato, Y. ;
Owari, H. ;
Watanabe, K. ;
Matsuyama, M. ;
Takahama, K. ;
Mori, T. ;
Miyao, K. ;
Choki, K. ;
Fukushima, T. ;
Tanaka, T. ;
Koyanagi, M. .
6TH INTERNATIONAL IEEE CONFERENCE ON POLYMERS AND ADHESIVES IN MICROELECTRONICS AND PHOTONICS, PROCEEDINGS 2007, 2007, :193-+
[9]  
Harper C.A., 2000, HIGH PERFORMANCE PRI
[10]   Fabrication and characterization of polymer optical waveguides with integrated micromirrors for three-dimensional board-level optical interconnects [J].
Immonen, M ;
Karppinen, M ;
Kivilahti, JK .
IEEE TRANSACTIONS ON ELECTRONICS PACKAGING MANUFACTURING, 2005, 28 (04) :304-311