St. Mary's Hospital · US
Area of research
Biomedical Engineering · Cellular and Molecular Neuroscience
Research interest
Research interests include Advanced Sensor and Energy Harvesting Materials, Neuroscience and Neural Engineering, Conducting polymers and applications, and Nanomaterials and Printing Technologies.
Magnetically reshapable 3D multi-electrode arrays of liquid metals for electrophysiological analysis of brain organoids.
Soft 3D Bioelectrodes for Intraorganoid Signal Monitoring in Cardiac Models
Soft 3D Bioelectrodes for Intraorganoid Signal Monitoring in Cardiac Models.
Power-integrated, wireless neural recording systems on the cranium using a direct printing method for deep-brain analysis.
Magnetic Manipulation of Locomotive Liquid Electrodes for Wireless Active Cardiac Monitoring.
Brain-wide mapping reveals that engrams for a single memory are distributed across multiple brain regions
High-Resolution 3D Printing for Electronics.
Multimodal Characterization of Cardiac Organoids Using Integrations of Pressure-Sensitive Transistor Arrays with Three-Dimensional Liquid Metal Electrodes.
Cellular anatomy of the mouse primary motor cortex
A soft and transparent contact lens for the wireless quantitative monitoring of intraocular pressure.
Divergent pallidal pathways underlying distinct Parkinsonian behavioral deficits
Smart contact lens and transparent heat patch for remote monitoring and therapy of chronic ocular surface inflammation using mobiles.
Recent Advances in Wearable Devices for Non-Invasive Sensing
3D Heterogeneous Device Arrays for Multiplexed Sensing Platforms Using Transfer of Perovskites.
Smart, soft contact lens for wireless immunosensing of cortisol.
Cellular Anatomy of the Mouse Primary Motor Cortex
High-resolution, reconfigurable printing of liquid metals with three-dimensional structures.
Recent Progress in Wireless Sensors for Wearable Electronics.
Protection of tissue physicochemical properties using polyfunctional crosslinkers
Multiplexed and scalable super-resolution imaging of three-dimensional protein localization in size-adjustable tissues
Simple, Scalable Proteomic Imaging for High-Dimensional Profiling of Intact Systems