This inventor holds 1 USPTO granted patent and 1 published patent application. Top assignees: Arizona State University, University of California. Active years: 2022.
Company Filing History:


Years Active: 2022
Title: Roozbeh Emami: Innovator in Shape Morphing Soft Materials
Introduction
Roozbeh Emami is a notable inventor based in Tempe, AZ (US). He has made significant contributions to the field of soft materials, particularly through his innovative work on shape morphing technologies. His research focuses on developing materials that can mimic biological functions, which has potential applications in various industries.
Latest Patents
Roozbeh Emami holds a patent for "Shape morphing soft materials and assemblies including the same." This invention involves a hydrogel precursor composition that includes 10 wt % to 40 wt % N-isopropylacrylamide, 0.5 wt % to 2 wt % N,N'-methylenebisacrylamide, a solvent, and a photoinitiator. The hydrogel precursor composition is both photocurable and thermally responsive. By photopolymerizing this composition, a thermally responsive hydrogel is formed, which can mimic the activity of muscle fibers. This innovative approach opens new avenues for research and application in soft robotics and biomedical devices.
Career Highlights
Throughout his career, Roozbeh Emami has worked with prestigious institutions such as Arizona State University and the University of California. His work has been instrumental in advancing the understanding and application of soft materials in technology and medicine.
Collaborations
Roozbeh has collaborated with notable colleagues, including Daniel M Aukes and Yousif Alsaid. These partnerships have enriched his research and contributed to the development of innovative solutions in the field of soft materials.
Conclusion
Roozbeh Emami is a pioneering inventor whose work on shape morphing soft materials has the potential to revolutionize various applications. His contributions to the field highlight the importance of innovation in developing new technologies that can mimic biological functions.