Bellevue, WA, United States of America

Jae Chung


Average Co-Inventor Count = 6.0

ph-index = 1

Forward Citations = 5(Granted Patents)


Company Filing History:


Years Active: 2014

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1 patent (USPTO):Explore Patents

Title: **Inventor Spotlight: Jae Chung**

Introduction

Jae Chung is an innovator based in Bellevue, WA, known for his contributions to the field of microfluidics. He has made a significant impact through his inventive work that leverages biomimetic principles to address challenges in fluid manipulation.

Latest Patents

Jae Chung holds a patent titled "Devices, apparatus, and methods employing biomimetic cilia for microfluidic manipulation." This innovative device comprises one or more cantilevered biomimetic cilia and a liquid disposed among them. The design allows for individual biomimetic cilia to be at least partially submerged in the liquid, with the unique arrangement enabling excitation into resonance. This resonant behavior facilitates effective mixing and pumping, showcasing the inventive merging of biomimicry with engineering.

Career Highlights

Currently, Jae Chung is affiliated with the University of Washington, where he continues to push the boundaries of microfluidic technology. His patent showcases his dedication to improving fluid manipulation techniques, which can have broad applications in various scientific and engineering disciplines.

Collaborations

Throughout his career, Jae Chung has worked alongside distinguished colleagues, including Santosh Devasia and James J. Riley. These collaborations have bolstered his research and added depth to the innovations emerging from their collective expertise.

Conclusion

Jae Chung's work represents a significant advancement in the field of microfluidics, particularly with his patent that utilizes biomimetic cilia for fluid control. His contributions at the University of Washington exemplify the potential for innovative solutions derived from nature-inspired designs. As he continues his research, the implications of his work may lead to further breakthroughs in microfluidic technologies.

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