Optimization and Characterization of Flexible Polymeric Optical Waveguide Fabrication Process for Fully Embedded Board-level Optical Interconnects

被引:0
|
作者
Shiah, Lim Li [1 ]
Teo, Calvin [1 ]
Yee, Hong Lor [1 ]
Wei, Tan Chee [1 ]
Chai, Joey [1 ]
Jie, Yap Guan [1 ]
Guan, Lim Teck [1 ]
Ramana, P. V. [1 ]
Lau, John H. [1 ]
Chang, Raymond [2 ]
Chang, Henry [2 ]
Tang, Tom [2 ]
Chiang, Steve [2 ]
Cheng, David [2 ]
Tseng, T. J. [2 ]
机构
[1] ASTAR, Inst Microelect & Unimicron, 11 Sci Pk Rd,Singapore Sci Pk 2, Singapore 117685, Singapore
[2] Unimicron Technol Corp, Taoyuan, Taiwan
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中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Optical interconnections on printed circuit board are promising approach for use throughout the backplane and motherboard. Optical interconnect with its low propagation loss and high data-transfer density become the key driver to solve the limitation of electrical interconnections which fail to meet with increasing data rate requirement The advantages of embedded polymer waveguide as optical interconnects is the potential compatibility with current PCB or silicon manufacturing process which could facilitate a smooth technology transition from electrical to optical technologies This paper reports on optimization of the fabrication process of 10 cm long flexible polymer waveguide layer with 45 degrees micro-mirror on a PI film by using soft molding to achieve fully embedded board-level optoelectronic interconnects. The photo-active UV-curable fluorinated acrylate resin with low propagation loss (0.05dB/cm @ 830nm), WIR30-RI series (Chemoptics) was chosen as clad and core (70pm x 70pm) materials, respectively. The waveguide layers are sandwiched between two polyimide films which support and protect the waveguide layer. Soft molding process is developed to replicate the polymer waveguide. It is known that oxygen inhibition is the key issue when UV-curing the acrylate coating under oxygen atmosphere. Nitrogen shielding is successfully eliminating the oxygen inhibition effect and has improved the surface condition. Scanning electron microscope (SEM) was used to analyze the effectiveness of the optimization process. The 450 micro-mirror in waveguide was formed by using 90 degrees V-shaped diamond blade. The propagation loss of fabricated waveguide is -0.3dB/cm at 850nm wavelength. Detailed of each process arc discussed in the paper.
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页码:1114 / +
页数:2
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