Title :
Lateral compliance and elastic stability of a dual-coated optical fiber of finite length, with application to nano-rods embedded into low-modulus elastic media
Author_Institution :
EE Dept., Univ. of California, Los Altos, CA
Abstract :
We address the lateral compliance and elastic stability of a dual-coated fiber of finite length (such as, e.g., an optical fiber interconnect) and apply the obtained solution to a nano-rod (nano-wire, nano-fiber, carbon nano-tube) embedded into a low-modulus elastic medium. The latter situation is encountered in nano-composites, as well as in some advanced heat-spreaders employing nano-rod-arrays. Both the photonic (dual-coated fiber) and the nanotechnology (nano-rod embedded into an elastic medium) related problems can be reduced, as far as modeling is concerned, to the problem of the mechanical behavior of a cantilever (in the case of an optical fiber) or a ldquofree-freerdquo (in the case of a nano-rod) beam lying on a continuous elastic foundation and subjected to the combined action of axial compression and lateral loading or to the elevated axial loading. We develop physically meaningful analytical (ldquomathematicalrdquo) models that enable one to predict the behavior of the structural elements in question. Our models enable one to determine the appropriate length of the fiber (rod), establish the condition of its elastic stability, select the coating materials or the embedding elastic medium with the most favorable properties, establish the adequate thickness of the primary coating or the level of the contact pressure, etc.
Keywords :
cantilevers; carbon nanotubes; nanofibres; nanowires; optical fibres; optical interconnections; axial compression; cantilever; carbon nanotube; coating materials; dual-coated optical fiber; elastic stability; embedded nanorods; heat-spreaders; lateral compliance; lateral loading; low-modulus elastic media; nanofiber; nanotechnology; nanowire; optical fiber interconnect; photonics; Coatings; Equations; Nanotechnology; Optical arrays; Optical fibers; Optical materials; Predictive models; Stability; Thermal loading; Thermal stresses;
Conference_Titel :
Electronic Components and Technology Conference, 2009. ECTC 2009. 59th
Conference_Location :
San Diego, CA
Print_ISBN :
978-1-4244-4475-5
Electronic_ISBN :
0569-5503
DOI :
10.1109/ECTC.2009.5074019