Kyoto, Japan

Shihei Motofuji

USPTO Granted Patents = 2 


Average Co-Inventor Count = 4.4

ph-index = 1


Company Filing History:


Years Active: 2014-2022

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2 patents (USPTO):Explore Patents

Title: Shihei Motofuji: Innovator in Pharmaceutical and Photosensitive Technologies

Introduction

Shihei Motofuji is a notable inventor based in Kyoto, Japan. He has made significant contributions to the fields of pharmaceuticals and photosensitive compositions. With a total of 2 patents, his work focuses on enhancing drug formulation stability and energy-efficient curing processes.

Latest Patents

Motofuji's latest patents include a raw material for bulk drugs and a pharmaceutical additive that provide excellent formulation stability and over-time stability of drug efficacy. This invention involves a polyether composition with specific molecular weight characteristics, ensuring high-quality pharmaceutical applications. Additionally, he has developed a photosensitive composition that can be cured with low energy consumption, even in the presence of high concentrations of colorants or when in thick film form. This composition comprises a radical initiator, an acid or base generator, a polymerizable substance, and a colorant or metal powder, showcasing his innovative approach to material science.

Career Highlights

Motofuji is currently employed at Sanyo Chemical Industries, Ltd., where he continues to push the boundaries of innovation in chemical applications. His work has not only advanced the pharmaceutical industry but also contributed to more sustainable practices in material usage.

Collaborations

Throughout his career, Motofuji has collaborated with esteemed colleagues such as Kenichiro Nakai and Kyosuke Michigami. These partnerships have fostered a creative environment that encourages the development of groundbreaking technologies.

Conclusion

Shihei Motofuji's contributions to pharmaceutical and photosensitive technologies exemplify the spirit of innovation. His patents reflect a commitment to improving drug formulation and energy efficiency in curing processes.

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