Irvine, CA, United States of America

Keith C Donavan

This inventor holds 2 USPTO granted patents. Top assignee: University of California. Active years: 2013-2015.


Average Co-Inventor Count = 5.0

ph-index = 1

Forward Citations = 3(Granted Patents)


Company Filing History:


Years Active: 2013-2015

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2 patents (USPTO):Explore Patents

Title: Innovations of Keith C Donavan

Introduction

Keith C Donavan is an accomplished inventor based in Irvine, CA. He has made significant contributions to the field of electrically conductive polymers, particularly through his innovative patents. With a total of 2 patents, Donavan's work focuses on integrating biological elements into polymeric structures for advanced applications.

Latest Patents

Donavan's latest patents include groundbreaking work on electrically conductive polymer electrodes with incorporated viruses. His research involves grafting M13 bacteriophage into an array of poly(3,4-ethylenedioxythiophene) (PEDOT) nanowires. This process generates hybrids of conducting polymers and replicable genetic packages (rgps) such as viruses. The incorporation of rgps into the polymeric backbone of PEDOT occurs during electropolymerization via lithographically patterned nanowire electrodeposition (LPNE). The resultant arrays of rgps-PEDOT nanowires enable real-time, reagent-free electrochemical biosensing of analytes in physiologically relevant buffers.

Career Highlights

Donavan is affiliated with the University of California, where he continues to push the boundaries of research in conductive polymers. His innovative approach has garnered attention in the scientific community, leading to advancements in biosensing technologies.

Collaborations

Some of his notable coworkers include Gregory A Weiss and Reginald M Penner. Their collaborative efforts have contributed to the success of Donavan's research and innovations.

Conclusion

Keith C Donavan's work exemplifies the intersection of biology and materials science, showcasing the potential of electrically conductive polymers in real-world applications. His contributions are paving the way for future innovations in biosensing technologies.

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