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Dive into the research topics where Jeffry J. Sniegowski is active.

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Featured researches published by Jeffry J. Sniegowski.


Other Information: PBD: 1 Jun 2000 | 2000

Integration of optoelectronics and MEMS by free-space micro-optics

Mial E. Warren; Olga Blum Spahn; William C. Sweatt; R. J. Shul; Joel R. Wendt; Gregory A. Vawter; Tom W. Krygowski; David Reyes; M. Steven Rodgers; Jeffry J. Sniegowski

This report represents the completion of a three-year Laboratory-Directed Research and Development (LDRD) program to investigate combining microelectromechanical systems (MEMS) with optoelectronic components as a means of realizing compact optomechanical subsystems. Some examples of possible applications are laser beam scanning, switching and routing and active focusing, spectral filtering or shattering of optical sources. The two technologies use dissimilar materials with significant compatibility problems for a common process line. This project emphasized a hybrid approach to integrating optoelectronics and MEMS. Significant progress was made in developing processing capabilities for adding optical function to MEMS components, such as metal mirror coatings and through-vias in the substrate. These processes were used to demonstrate two integration examples, a MEMS discriminator driven by laser illuminated photovoltaic cells and a MEMS shutter or chopper. Another major difficulty with direct integration is providing the optical path for the MEMS components to interact with the light. The authors explored using folded optical paths in a transparent substrate to provide the interconnection route between the components of the system. The components can be surface-mounted by flip-chip bonding to the substrate. Micro-optics can be fabricated into the substrate to reflect and refocus the light so that it can propagate from one device to another and them be directed out of the substrate into free space. The MEMS components do not require the development of transparent optics and can be completely compatible with the current 5-level polysilicon process. They report progress on a MEMS-based laser scanner using these concepts.


Archive | 2003

Surface micromachined optical system with reinforced mirror microstructure

Jeffry J. Sniegowski; M. Steven Rodgers


Archive | 2001

Microelectromechanical apparatus for elevating and tilting a platform

Samuel Lee Miller; Paul J. McWhorter; Murray Steven Rodgers; Jeffry J. Sniegowski; Stephen Matthew Barnes


Archive | 2001

Method for making a microstructure by surface micromachining

Jeffry J. Sniegowski; M. Steven Rodgers


Archive | 2001

Single chip optical cross connect

Samuel Lee Miller; Paul J. McWhorter; Murray Steven Rodgers; Stephen Matthew Barnes; Jeffry J. Sniegowski


Archive | 2004

Implant having mems flow module with movable, flow-controlling baffle

Jeffry J. Sniegowski; Paul McWhorter; M. Steven Rodgers


Archive | 2003

Large tilt angle MEM platform

Samuel Lee Miller; Murray Steven Rodgers; Stephen Matthew Barnes; Jeffry J. Sniegowski; Paul J. McWhorter


Archive | 2006

System and method for treating glaucoma

James Koonmen; Norman Smith; Jeffry J. Sniegowski; Stephen Barnes; Paul McWhorter; M. Rodgers


Archive | 2002

Microelectromechanical system with non-collinear force compensation

Samuel Lee Miller; Murray Steven Rodgers; Stephen Matthew Barnes; Jeffry J. Sniegowski; Paul J. McWhorter


Archive | 2005

Glaucoma implant having MEMS filter module

M. Steven Rodgers; Jeffry J. Sniegowski; Paul J. McWhorter

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Paul J. McWhorter

Sandia National Laboratories

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Murray Steven Rodgers

United States Department of Energy

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M. Steven Rodgers

Sandia National Laboratories

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Samuel Lee Miller

Sandia National Laboratories

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Norman F. Smith

Sandia National Laboratories

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M. Steven Rodgers

Sandia National Laboratories

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