Area of research
Biomedical Engineering · Biomaterials
Research interest
Research interests include Materials science, Tissue engineering, Self-healing hydrogels, Nanotechnology, Gelatin, and Carbon nanotube.
Egg White Photocrosslinkable Hydrogels as Versatile Bioinks for Advanced Tissue Engineering Applications
Enhanced skeletal muscle formation on microfluidic spun gelatin methacryloyl (GelMA) fibres using surface patterning and agrin treatment
Biocompatibility of hydrogel-based scaffolds for tissue engineering applications
Gelatin–Polyaniline Composite Nanofibers Enhanced Excitation–Contraction Coupling System Maturation in Myotubes
Aligned Carbon Nanotube–Based Flexible Gel Substrates for Engineering Biohybrid Tissue Actuators
Microfluidic Spinning of Cell‐Responsive Grooved Microfibers
Bioconjugated Hydrogels for Tissue Engineering and Regenerative Medicine
Facile and green production of aqueous graphene dispersions for biomedical applications
Hybrid hydrogels containing vertically aligned carbon nanotubes with anisotropic electrical conductivity for muscle myofiber fabrication
Myotube formation on gelatin nanofibers – Multi-walled carbon nanotubes hybrid scaffolds
Three-dimensional co-culture of C2C12/PC12 cells improves skeletal muscle tissue formation and function
Siphon-driven microfluidic passive pump with a yarn flow resistance controller
Carbon-Nanotube-Embedded Hydrogel Sheets for Engineering Cardiac Constructs and Bioactuators
Skeletal Muscle Tissue Engineering: Methods to Form Skeletal Myotubes and Their Applications
DNA-directed self-assembly of shape-controlled hydrogels
Hyperbranched Polyester Hydrogels with Controlled Drug Release and Cell Adhesion Properties
Engineered Nanomembranes for Directing Cellular Organization Toward Flexible Biodevices
Electrical stimulation as a biomimicry tool for regulating muscle cell behavior
Micropatterned Polymeric Nanosheets for Local Delivery of an Engineered Epithelial Monolayer
Functional Human Vascular Network Generated in Photocrosslinkable Gelatin Methacrylate Hydrogels
Microfabrication of complex porous tissue engineering scaffolds using 3D projection stereolithography
Microfabricated Biomaterials for Engineering 3D Tissues
Vascularized Bone Tissue Engineering: Approaches for Potential Improvement
Directed endothelial cell morphogenesis in micropatterned gelatin methacrylate hydrogels
Building Vascular Networks
Osteoblastic/Cementoblastic and Neural Differentiation of Dental Stem Cells and Their Applications to Tissue Engineering and Regenerative Medicine
Development of functional biomaterials with micro- and nanoscale technologies for tissue engineering and drug delivery applications
Microscale Strategies for Generating Cell-Encapsulating Hydrogels
Hydrogel surfaces to promote attachment and spreading of endothelial progenitor cells
Lens-Free Imaging for Biological Applications