Oak Ridge, TN, United States of America

Yijing Y Stehle


Average Co-Inventor Count = 4.0

ph-index = 1

Forward Citations = 2(Granted Patents)


Company Filing History:


Years Active: 2019

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1 patent (USPTO):Explore Patents

Title: Yijing Y Stehle: Innovator in Graphene Synthesis

Introduction

Yijing Y Stehle is a prominent inventor based in Oak Ridge, TN (US). She has made significant contributions to the field of materials science, particularly in the synthesis of graphene. Her innovative work has led to the development of a patented method for producing continuous single crystal graphene, which has numerous applications in electronics and materials engineering.

Latest Patents

Yijing Y Stehle holds a patent for "Continuous single crystal growth of graphene." This patent describes systems and methods for synthesizing continuous single crystal graphene. The process involves drawing a catalytic substrate through a chemical vapor deposition chamber while flowing hydrogen gas in the same direction. A hydrocarbon precursor gas is supplied above the surface of the catalytic substrate, creating a high concentration gradient at the crystal growth front. This method promotes the growth of a continuous single crystal graphene film while suppressing the growth of seed domains ahead of the crystal growth front. She has 1 patent to her name.

Career Highlights

Yijing Y Stehle is currently employed at UT-Battelle, Inc., where she continues to advance her research in graphene synthesis. Her work has garnered attention for its potential to revolutionize the production of high-quality graphene, which is essential for various technological applications.

Collaborations

Some of her notable coworkers include Frederick Alyious List, III, and Ivan Vlassiouk. Their collaborative efforts contribute to the innovative research environment at UT-Battelle, Inc.

Conclusion

Yijing Y Stehle is a trailblazer in the field of graphene synthesis, with her patented methods paving the way for advancements in materials science. Her contributions are vital to the ongoing development of new technologies that utilize graphene's unique properties.

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