Area of research
Biomedical Engineering · Condensed Matter Physics
Research interest
Research interests include Computer science, Nanotechnology, Actuator, Tissue engineering, Process (computing), and Chemistry.
Integrating bioelectronics with cell-based synthetic biology
Leveraging microtopography to pattern multi-oriented muscle actuators
Soft Biological Actuators for Meter-Scale Homeostatic Biohybrid Robots
Meta-adaptive biomaterials: multiscale, spatiotemporal organization and actuation in engineered tissues
Modular and AI-driven in situ monitoring platform for real-time process analysis in embedded bioprinting
Integrating synthetic biology to understand and engineer the heart, lung, blood, and sleep systems
Biofabrication of Living Actuators
Mechanically programming anisotropy in engineered muscle with actuating extracellular matrices
Actuated tissue engineered muscle grafts restore functional mobility after volumetric muscle loss
Principles for the design of multicellular engineered living systems
Will microfluidics enable functionally integrated biohybrid robots?
Light-degradable hydrogels as dynamic triggers for gastrointestinal applications
Biohybrid actuators for robotics: A review of devices actuated by living cells
Biomimicry, Biofabrication, and Biohybrid Systems: The Emergence and Evolution of Biological Design
Optogenetic skeletal muscle-powered adaptive biological machines
Three-dimensionally printed biological machines powered by skeletal muscle
Photopatterning of hydrogel scaffolds coupled to filter materials using stereolithography for perfused 3D culture of hepatocytes