Area of research
Biomedical Engineering · Electrical and Electronic Engineering
Research interest
Research focused on Self-healing hydrogels and Toughness, with related work in Electrical conductor, Composite number, Nanotechnology. Notable publications include '3D printable strong and tough composite organo-hydrogels inspired by natural hierarchical composite design principles', 'Deciphering the Roles of Metformin in Alzheimer’s Disease: A Snapshot', and 'Highly Robust Conductive Organo‐Hydrogels with Powerful Sensing Capabilities Under Large Mechanical Stress'.
Robust skin-integrated conductive biogel for high-fidelity detection under mechanical stress
3D printable strong and tough composite organo-hydrogels inspired by natural hierarchical composite design principles
Robust and sensitive conductive nanocomposite hydrogel with bridge cross-linking–dominated hierarchical structural design
A Hierarchical Hydrogel Impregnation Strategy Enables Brittle‐Failure‐Free 3D‐Printed Bioceramic Scaffolds
Highly Robust Conductive Organo‐Hydrogels with Powerful Sensing Capabilities Under Large Mechanical Stress
An organo-hydrogel with extreme mechanical performance and tolerance beyond skin
Mitochondrial pyruvate carrier influences ganoderic acid biosynthesis in Ganoderma lucidum
Deciphering the Roles of Metformin in Alzheimer’s Disease: A Snapshot
In-plane cyclic behavior of brick walls strengthened with CFRP plates embedded in the horizontal mortar joint
Influence of Mn co-doping on the magnetic properties of planar arrays of Ga<sub>x</sub>Fe<sub>4−x</sub>N nanocrystals in a GaN matrix