Randolph, NJ, United States of America

Nathaniel R Quick


Average Co-Inventor Count = 1.8

ph-index = 5

Forward Citations = 164(Granted Patents)


Location History:

  • Indianapolis, IN (US) (1983 - 1984)
  • Randolph, NJ (US) (1987 - 1993)

Company Filing History:


Years Active: 1983-1993

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7 patents (USPTO):Explore Patents

Title: Nathaniel R Quick: Innovator in Ceramic Technologies

Introduction

Nathaniel R Quick is a notable inventor based in Randolph, NJ (US), recognized for his contributions to the field of ceramic technologies. He holds a total of 7 patents, showcasing his innovative spirit and dedication to advancing materials science.

Latest Patents

Among his latest patents, Quick has developed a method for clad-coating ceramic particles. This innovative technique involves coating metal and ceramic particles with transition metals such as silver, gold, copper, nickel, iron, cobalt, and aluminum. The resulting coated particles are designed for enhanced performance in microelectronics and metal matrix composites. Additionally, Quick has created a process for converting ceramic materials into electrical conductors and semiconductors. This method utilizes controlled oxidation through localized thermal heating, allowing for the production of electrically conductive paths on carbide and nitride ceramic substrates.

Career Highlights

Throughout his career, Nathaniel R Quick has worked with prominent companies, including AT&T Technologies, Inc. His experience in these organizations has contributed to his expertise in the field of ceramics and materials engineering.

Collaborations

Quick has collaborated with notable individuals such as Murray Robbins and James C Kenney, further enriching his professional journey and expanding his network within the industry.

Conclusion

Nathaniel R Quick's innovative work in ceramic technologies has significantly impacted the field, particularly through his patented methods for enhancing the properties of ceramic materials. His contributions continue to influence advancements in microelectronics and materials science.

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