Sykesville, MD, United States of America

Scott Carl Horst


Average Co-Inventor Count = 3.2

ph-index = 2

Forward Citations = 19(Granted Patents)


Company Filing History:


Years Active: 2004-2010

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10 patents (USPTO):Explore Patents

Title: Scott Carl Horst: Innovator in Optical Semiconductor Technology

Introduction

Scott Carl Horst is a notable inventor based in Sykesville, MD (US). He has made significant contributions to the field of optical semiconductor technology, holding a total of 10 patents. His work focuses on innovative methods of fabricating devices that enhance optical performance.

Latest Patents

One of Horst's latest patents is a method of fabricating a turning mirror using a sacrificial spacer layer. This invention outlines a process for creating a waveguide by first fabricating an underlying optical semiconductor structure. A trench is etched into this structure, resulting in an L-shaped configuration. A sacrificial spacer layer is then deposited within the trench, and the waveguide is formed on this layer using a mask to angle the vertex of the L-shaped structure. Portions of the sacrificial spacer layer are later removed to create air gaps between the waveguide and the trench's sidewalls.

Career Highlights

Throughout his career, Scott Carl Horst has worked with esteemed organizations, including the National Security Agency and the United States of America as represented by the National Security. His expertise in optical semiconductor technology has positioned him as a key figure in the development of advanced optical devices.

Collaborations

Horst has collaborated with notable professionals in his field, including John Leslie Fitz and Daniel Stephen Hinkel. Their combined efforts have contributed to the advancement of technologies in optical semiconductors.

Conclusion

Scott Carl Horst's innovative work in optical semiconductor technology and his numerous patents highlight his significant impact on the field. His contributions continue to influence advancements in optical devices and fabrication methods.

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