Area of research
Biomedical Engineering · Bioengineering
Research interest
Research focused on Underwater and Microelectromechanical systems, with related work in Microfluidics, Acoustics, Nanofiber. Notable publications include 'Multiplexing slanted spiral microchannels for ultra-fast blood plasma separation', 'From Biological Cilia to Artificial Flow Sensors: Biomimetic Soft Polymer Nanosensors with High Sensing Performance', and 'Artificial fish skin of self-powered micro-electromechanical systems hair cells for sensing hydrodynamic flow phenomena'.
Application of soft computing techniques in the optimization of 3D-printed piezoresistive sensors
Recent Advances in Wearable Electromechanical Sensors Based on Auxetic Textiles
Green and Sustainable Membranes: A review
<i>Green Biomaterials</i> : fundamental principles
Meniere's disease: Pathogenesis, treatments, and emerging approaches for an idiopathic bioenvironmental disorder
An Intelligence Cattle Reidentification System Over Transport by Siamese Neural Networks and YOLO
Evidence That Ultrafast Nonquantal Transmission Underlies Synchronized Vestibular Action Potential Generation
Metal-organic frameworks (MOF) based heat transfer: A comprehensive review
Carbon nanofiber-reinforced Pt thin film-based airflow sensor for respiratory monitoring
Development of Ultrasensitive Biomimetic Auditory Hair Cells Based on Piezoresistive Hydrogel Nanocomposites
Reliability of multi-purpose offshore-facilities: Present status and future direction in Australia
Engineering biomimetic hair bundle sensors for underwater sensing applications
Selective separation of microalgae cells using inertial microfluidics
Characterization of single polyvinylidene fluoride (PVDF) nanofiber for flow sensing applications
A 3D-printed mini-hydrocyclone for high throughput particle separation: application to primary harvesting of microalgae
Multiplexing slanted spiral microchannels for ultra-fast blood plasma separation
From Biological Cilia to Artificial Flow Sensors: Biomimetic Soft Polymer Nanosensors with High Sensing Performance
Nanofibril scaffold assisted MEMS artificial hydrogel neuromasts for enhanced sensitivity flow sensing
Biomimetic Microsensors Inspired by Marine Life
Artificial fish skin of self-powered micro-electromechanical systems hair cells for sensing hydrodynamic flow phenomena
MEMS sensors for assessing flow-related control of an underwater biomimetic robotic stingray
Touch at a distance sensing: lateral-line inspired MEMS flow sensors
Flexible and Surface-Mountable Piezoelectric Sensor Arrays for Underwater Sensing in Marine Vehicles
A flexible liquid crystal polymer MEMS pressure sensor array for fish-like underwater sensing