Area of research
Biomedical Engineering · Oral Surgery
Research interest
Research interests include Bone Tissue Engineering Materials, Dental Implant Techniques and Outcomes, Dental materials and restorations, and Orthopaedic implants and arthroplasty.
Redefining microrough titanium surfaces: Thermo-engineered soft-edge microrough surfaces resolve the proliferation-differentiation trade-off kinetics in osteoblasts.
Initiator–particle synergy enables microrough, osteoconductive polymethyl methacrylate bone cement
Bridging the missing middle in osseointegration: meso-scale topography between macro design and microroughness
Advancing osseointegration research: A dynamic three-dimensional (3D) <i>in vitro</i> culture model for dental implants.
Reimagining bonding interfaces: UV photofunctionalization, a novel physicochemical approach, unlocks titanium and cement adhesive potential.
Beyond microroughness: novel approaches to navigate osteoblast activity on implant surfaces
Nanofeatured surfaces in dental implants: contemporary insights and impending challenges
Optimization of blood and protein flow around superhydrophilic implant surfaces by promoting contact hemodynamics.
Impact of nano-scale trabecula size on osteoblastic behavior and function in a meso-nano hybrid rough biomimetic zirconia model.
Disparity in the Influence of Implant Provisional Materials on Human Gingival Fibroblasts with Different Phases of Cell Settlement: An In Vitro Study.
Novel Tuning of PMMA Orthopedic Bone Cement Using TBB Initiator: Effect of Bone Cement Extracts on Bioactivity of Osteoblasts and Osteoclasts.
A Novel Cell Delivery System Exploiting Synergy between Fresh Titanium and Fibronectin.
N-Acetyl Cysteine-Mediated Improvements in Dental Restorative Material Biocompatibility.
Cell Type-Specific Effects of Implant Provisional Restoration Materials on the Growth and Function of Human Fibroblasts and Osteoblasts.
Ultraviolet Light Treatment of Titanium Microfiber Scaffolds Enhances Osteoblast Recruitment and Osteoconductivity in a Vertical Bone Augmentation Model: 3D UV Photofunctionalization.
Biological and osseointegration capabilities of hierarchically (meso-/micro-/nano-scale) roughened zirconia
Effect of UV-photofunctionalization on oral bacterial attachment and biofilm formation to titanium implant material
Development of a biointegrated mandibular reconstruction device consisting of bone compatible titanium fiber mesh scaffold
Hydrocarbon Deposition Attenuates Osteoblast Activity on Titanium
Success Rate, Healing Time, and Implant Stability of Photofunctionalized Dental Implants
Implant Stability Change and Osseointegration Speed of Immediately Loaded Photofunctionalized Implants
Photofunctionalization increases the bioactivity and osteoconductivity of the titanium alloy Ti6Al4V
Photofunctionalized Dental Implants: A Case Series in Compromised Bone