Beaumont, TX, United States of America

Tracy Benson


Average Co-Inventor Count = 6.0

ph-index = 1

Forward Citations = 1(Granted Patents)


Company Filing History:


Years Active: 2019

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1 patent (USPTO):Explore Patents

Title: Tracy Benson - Innovator in Hydrothermal Synthesis

Introduction

Tracy Benson is a notable inventor based in Beaumont, Texas. She has made significant contributions to the field of catalysis, particularly through her innovative work on alkali promoted transition metal sulfide catalysts. Her research has implications for various industrial applications, including the Fischer-Tropsch synthesis process.

Latest Patents

Tracy Benson holds a patent for the "Hydrothermal synthesis of alkali promoted MOS2-based catalyst." This patent outlines a method for creating and utilizing an alkali promoted transition metal sulfide Fischer Tropsch catalyst. The process involves several steps, including mixing an ammonium tetrathiomolybdate precursor compound with an alkali metal compound and molybdenum disulfide in deionized water. The mixture is then heated under specific conditions to form a reaction product, which is subsequently filtered, washed, and dried. This innovative approach has the potential to enhance the efficiency of catalytic processes.

Career Highlights

Tracy Benson is affiliated with the University of Texas System, where she continues to advance her research in catalysis. Her work has garnered attention for its practical applications and contributions to the scientific community. With 1 patent to her name, she exemplifies the spirit of innovation in her field.

Collaborations

Tracy has collaborated with esteemed colleagues, including Belinda D Molina and Brenda Torres. These partnerships have enriched her research and expanded the impact of her work in the scientific community.

Conclusion

Tracy Benson is a pioneering inventor whose work in hydrothermal synthesis has the potential to transform catalytic processes. Her contributions to the field are significant, and her ongoing research promises to yield further advancements in catalysis.

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