Design and fabrication of advanced fiber alignment structures for field-installable fiber connectors

被引:0
|
作者
Van Erps, Juergen [1 ]
Vervaeke, Michael [1 ]
Martinez, Alberto Sanchez [1 ]
Beri, Stefano [2 ]
Debaes, Christof [1 ]
Watte, Jan [2 ]
Thienpont, Hugo [1 ]
机构
[1] Vrije Univ Brussel, Brussels Photon Team B PHOT, Dept Appl Phys & Photon FirW TONA, B-1050 Brussels, Belgium
[2] TE Connect, FO Res, B-3010 Kessel Lo, Belgium
来源
MICRO-OPTICS 2012 | 2012年 / 8428卷
关键词
alignment structures; deep proton writing; fiber connector; fiber-to-the-home; mechanical simulations; optical telecom; polymer; rapid prototyping; OPTICAL-FIBER; COMPONENTS;
D O I
10.1117/12.922245
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
Fiber-To-The-Home (FTTH) networks have been adopted as a potential replacement of traditional electrical connections for the 'last mile' transmission of information at bandwidths over 1Gb/s. However, the success and adoption of optical access networks critically depend on the quality and reliability of connections between optical fibers. In particular a further reduction of insertion loss of field-installable connectors must be achieved without a significant increase in component cost. This requires precise alignment of fibers that can differ in terms of ellipticity, eccentricity or diameter and seems hardly achievable using today's widespread ferrule-based alignment systems. Novel low-cost structures for bare fiber alignment with outstanding positioning accuracies are strongly desired as they would allow reducing loss beyond the level achievable with ferrule-bore systems. However, the realization of such alignment system is challenging as it should provide sufficient force to position the fiber with sub-micron accuracy required in positioning the fiber. In this contribution we propose, design and prototype a bare-fiber alignment system which makes use of deflectable/compressible micro-cantilevers. Such cantilevers behave as springs and provide self-centering functionality to the structure. Simulations of the mechanical properties of the cantilevers are carried out in order to get an analytical approximation and a mathematical model of the spring constant and stress in the structure. Elastic constants of the order of 10(4) to 10(5) N/m are found out to be compatible with a proof stress of 70 MPa. Finally a first self-centering structure is prototyped in PMMA using our Deep Proton Writing technology. The spring constants of the fabricated cantilevers are in the range of 4 to 6 x 10(4) N/m and the stress is in the range 10 to 20 MPa. These self-centering structures have the potential to become the basic building blocks for a new generation of field-installable connectors.
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页数:11
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