Kisarazu, Japan

Yuichiro Nakaoki


Average Co-Inventor Count = 3.0

ph-index = 1


Company Filing History:


Years Active: 2016

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1 patent (USPTO):Explore Patents

Title: Yuichiro Nakaoki: Innovator in Enzyme Electrode Technology

Introduction

Yuichiro Nakaoki is a notable inventor based in Kisarazu, Japan. He has made significant contributions to the field of enzyme electrodes, particularly in the development of technologies that enhance their performance. His work focuses on the immobilization of enzymes on conductive materials, which is crucial for various applications in bioenergy and biosensing.

Latest Patents

Nakaoki holds a patent for an "Electrode having enzyme crystals immobilized thereon, method for producing electrode having enzyme crystals immobilized thereon, and biological fuel cell and biosensor provided with electrode having enzyme crystals immobilized thereon." The objective of this invention is to establish a technique that allows for the immobilization of enzymes on an electrically conductive base material in a uniform, high-density, and consistently aligned orientation. This advancement aims to construct an enzyme electrode with improved performance, which is essential for biological fuel cells and biosensors.

Career Highlights

Throughout his career, Yuichiro Nakaoki has worked with prominent companies such as Aisin Seiki Co., Ltd. and Riken Corporation. His experience in these organizations has contributed to his expertise in the field of enzyme technology and electrode development.

Collaborations

Nakaoki has collaborated with notable colleagues, including Yasushi Shigemori and Tsutomu Mikawa. These partnerships have likely enriched his research and innovation efforts in enzyme electrode technology.

Conclusion

Yuichiro Nakaoki's work in enzyme electrode technology represents a significant advancement in the field. His innovative approach to immobilizing enzymes on conductive materials has the potential to enhance the performance of biological fuel cells and biosensors. His contributions continue to influence the development of efficient and effective bioelectronic devices.

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