Raleigh, NC, United States of America

Dan J Lichtenwalner

This inventor holds 1 USPTO granted patent. Top assignee: North Carolina State University. Active years: 1996.


% Patents Active = 100.0

Average Co-Inventor Count = 6.0

ph-index = 1

Forward Citations = 83(Granted Patents)


Company Filing History:


Years Active: 1996

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1 patent (USPTO):Explore Patents

Title: Dan J Lichtenwalner: Innovator in Ferroelectric Capacitors

Introduction

Dan J Lichtenwalner is a notable inventor based in Raleigh, NC (US). He has made significant contributions to the field of ferroelectric capacitors, particularly through his innovative patent that enhances capacitor performance.

Latest Patents

Lichtenwalner holds a patent for "Hybrid metal/metal oxide electrodes for ferroelectric capacitors." This invention involves ferroelectric capacitors that utilize hybrid electrodes, which include both a conducting oxide and a noble metal. These hybrid structures are designed to improve performance compared to traditional capacitors that use either platinum or ruthenium oxide electrodes. The advancements in fatigue and leakage current performance make these capacitors suitable for applications in integrated circuits, such as non-volatile memory and dynamic random access memory.

Career Highlights

Dan J Lichtenwalner is affiliated with North Carolina State University, where he continues to contribute to research and innovation in the field of electrical engineering. His work has garnered attention for its potential to revolutionize capacitor technology.

Collaborations

Lichtenwalner has collaborated with esteemed colleagues, including Orlando H Auciello and Ken D Gifford. These partnerships have furthered the development of advanced materials and technologies in the realm of ferroelectric capacitors.

Conclusion

Dan J Lichtenwalner's contributions to the field of ferroelectric capacitors exemplify the impact of innovative thinking in technology. His patent for hybrid electrodes represents a significant advancement that could lead to improved performance in electronic devices.

Profile summary based on public USPTO records.
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