Area of research
Condensed Matter Physics · Biomedical Engineering
Research interest
Research interests include Micro and Nano Robotics, Microfluidic and Bio-sensing Technologies, Modular Robots and Swarm Intelligence, and Physics of Superconductivity and Magnetism.
The Mid-infrared Instrument for JWST and Its In-flight Performance
Drawing Dispersion Curves: Band Structure Customization via Nonlocal Phononic Crystals
Symmetry breaking propulsion of magnetic microspheres in nonlinearly viscoelastic fluids
Kinematic Model of a Magnetic-Microrobot Swarm in a Rotating Magnetic Dipole Field
A numerical method for inextensible elastic filaments in viscous fluids
Bipolar lophotrichous Helicobacter suis combine extended and wrapped flagella bundles to exhibit multiple modes of motility
Bacteria-inspired nanorobots with flagellar polymorphic transformations and bundling
Helical and rod-shaped bacteria swim in helical trajectories with little additional propulsion from helical shape
Versatile microrobotics using simple modular subunits
The wiggling trajectories of bacteria
Collaborative Research: Deformation-Enhanced Dynamics and Control of Microscale Modular Soft Robots
Collaborative Research: Exploring Flagellar Mechanics to Advance Bacterial Locomotion and Nanorobotic Propulsion
Collaborative Research: Elucidating the Diversity of Bacterial Flagellation and Motility Through Mechanics
Viscous constraints on zooplankton approach and interaction
Collaborative Research: Controlled Investigation of Micro- and Nanoscale Contact Interactions Between Microbes and Biomaterials Using Artificial Bacteria
CAREER: Microorganisms swimming around microstructural heterogeneity
Collaborative Research: Shepherding Biomedical Microswimmers Using Magnetic Fields
Collaborative Research: Bacterial Flagellar Forests: Designing a Biomaterial for Bio-Enabled Sensing and Actuation
Collaborative Research: Shepherding Biomedical Microswimmers Using Magnetic Fields
CAREER: Microorganisms swimming around microstructural heterogeneity
Collaborative Research: Bacterial Flagellar Forests: Designing a Biomaterial for Bio-Enabled Sensing and Actuation
EAGER: Theoretical exploration of chiral separation via microfluidic shear flows
Collaborative Research: Chiral Objects in Microfluidic Shear Flows: Chiral Separation and Microbial Locomotion