Area of research
Electrical and Electronic Engineering · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Semiconductor Quantum Structures and Devices, Blood properties and coagulation, Platelet Disorders and Treatments, and Semiconductor materials and devices.
Portable hepatitis C virus RNA extraction and stabilization using low-cost lab-on-a-chip style components with shelf stable reagents
Less-deformable erythrocyte subpopulations biomechanically induce endothelial inflammation in sickle cell disease
Less-deformable erythrocyte subpopulations biomechanically induce endothelial inflammation in sickle cell disease.
Single-pericyte nanomechanics measured by contraction cytometry.
An economical in-class sticker microfluidic activity develops student expertise in microscale physics and device manufacturing.
Autoantibodies immuno-mechanically modulate platelet contractile force and bleeding risk.
Opportunities and considerations for studying liver disease with microphysiological systems on a chip
Opportunities and considerations for studying liver disease with microphysiological systems on a chip.
Nanoscale strain gauges on flexible polymer substrates
Universal pre-mixing dry-film stickers capable of retrofitting existing microfluidics.
Resolving the missing link between single platelet force and clot contractile force.
Vascularized Microfluidics and Their Untapped Potential for Discovery in Diseases of the Microvasculature
Platelet heterogeneity enhances blood clot volumetric contraction: An example of asynchrono-mechanical amplification
Resolving the missing link between single platelet force and clot contractile force
Label-free hematology analysis using deep-ultraviolet microscopy
Label-free hematology analysis using deep-ultraviolet microscopy.
Stiffness based enrichment of leukemia cells using microfluidics.
Getting a good view: <i>in vitro</i> imaging of platelets under flow.
The biophysics and mechanics of blood from a materials perspective
The biophysics and mechanics of blood from a materials perspective.
Feeling the Force: Measurements of Platelet Contraction and Their Diagnostic Implications.
Smartphone app for non-invasive detection of anemia using only patient-sourced photos
A microengineered vascularized bleeding model that integrates the principal components of hemostasis
Feeling the Force: Measurements of Platelet Contraction and Their Diagnostic Implications
Magnetic forces enable controlled drug delivery by disrupting endothelial cell-cell junctions
Platelet–Microcapsule Hybrids Leverage Contractile Force for Targeted Delivery of Hemostatic Agents
Microfluidic Transduction Harnesses Mass Transport Principles to Enhance Gene Transfer Efficiency
Towards remote assessment and screening of acute abdominal pain using only a smartphone with native accelerometers
Single-platelet nanomechanics measured by high-throughput cytometry
Cellular softening mediates leukocyte demargination and trafficking, thereby increasing clinical blood counts