Cleveland, OH, United States of America

LaShanda T J Korley

USPTO Granted Patents = 1 

Average Co-Inventor Count = 3.0

ph-index = 1


Company Filing History:


Years Active: 2019

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1 patent (USPTO):Explore Patents

Title: LaShanda T J Korley: Innovator in Biomaterials

Introduction

LaShanda T J Korley is a prominent inventor based in Cleveland, OH (US). She has made significant contributions to the field of biomaterials, particularly through her innovative work on fiber reinforced hydrogels. Her research focuses on developing materials that can be utilized in various applications, including tissue engineering.

Latest Patents

LaShanda holds 1 patent for her invention titled "Fiber reinforced hydrogels and methods of making same." This patent discloses biomaterials that consist of a plurality of fibers embedded in a matrix of hydrogel material. The fibers and hydrogel material are formed during a single process step, which enhances the efficiency of the manufacturing process. In one embodiment, a multilayer coextrusion process is utilized to create these materials. The resulting biomaterials can be used to develop tissue engineering scaffolds, which are essential for growing biological matter. The process steps can be controlled to determine specific mechanical properties, such as the stiffness of the biomaterial, which in turn affects the physical properties of the biological material grown on the scaffold.

Career Highlights

LaShanda is affiliated with Case Western Reserve University, where she continues her research and development in biomaterials. Her work has garnered attention for its potential applications in medical and biological fields.

Collaborations

LaShanda collaborates with esteemed colleagues, including Gary E Wnek and Alexander M Jordan, who contribute to her research endeavors and help advance the field of biomaterials.

Conclusion

LaShanda T J Korley is a trailblazer in the development of innovative biomaterials, particularly through her work on fiber reinforced hydrogels. Her contributions have the potential to significantly impact tissue engineering and biological applications.

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