Los Angeles, CA, United States of America

Shiming Zhang

USPTO Granted Patents = 1 

 

Average Co-Inventor Count = 2.0

ph-index = 1


Company Filing History:


Years Active: 2025

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1 patent (USPTO):Explore Patents

Title: Shiming Zhang: Innovator in Iontronic Pressure Sensors

Introduction

Shiming Zhang is a prominent inventor based in Los Angeles, CA. He has made significant contributions to the field of pressure sensing technology. His innovative work focuses on low power-consumption iontronic pressure sensors, which have the potential to revolutionize various applications.

Latest Patents

Shiming Zhang holds a patent for a "Pressure sensor device with organic electrochemical transistors with microstructured hydrogel gating medium." This invention describes a low power-consumption iontronic pressure sensor that utilizes an ionic hydrogel as a solid gating medium for pressure sensing transistor elements. The sensor operates at voltages less than 1 V, with a power consumption of approximately 10-10μW, while maintaining a tunable sensitivity between 1 and 10 kPa. The design includes a substrate with pressure sensing transistor elements, each featuring a source electrode, a drain electrode, and a channel made from an electrically conducting polymer.

Career Highlights

Shiming Zhang is affiliated with the University of California, where he continues to advance his research in innovative sensor technologies. His work has garnered attention for its potential applications in various fields, including healthcare and environmental monitoring.

Collaborations

Shiming Zhang collaborates with Alireza Khademhosseini, a fellow researcher who shares his passion for advancing sensor technology. Their partnership has led to significant advancements in the development of iontronic devices.

Conclusion

Shiming Zhang's contributions to the field of pressure sensing technology highlight his innovative spirit and dedication to research. His patented work on iontronic pressure sensors showcases the potential for low power consumption and high sensitivity in future applications.

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