Building models for complex data. The purpose of this project is to better understand the process of building statistical models and construct new methods for building models for particular kinds of complex data. The expected outcomes include a new way of thinking about model building and practical tools which together enable us to get more value out of analysing complex data.
Dual-band antennas with digitally steerable beams made out of multi-state electromagnetic elements. A collection of antennas required for forthcoming wireless systems will be designed, made and tested. They are ideal for wireless on-body medical devices and wireless transmission of high-quality video and high-speed data. These systems will bring great benefits to wireless users and patients, including better quality of life and convenience.
Driving health care efficiencies and patient care outcomes by improving communication in acute to primary transitions of care. Communication problems are a major contributor to poor outcomes for patients transferring from acute to primary care, accounting for 41 per cent of preventable hospital readmissions. This project aims to identify risk factors for readmission and barriers to successful transitions of care for high-risk patient groups (including the elderly, paediatric and mental health pa ....Driving health care efficiencies and patient care outcomes by improving communication in acute to primary transitions of care. Communication problems are a major contributor to poor outcomes for patients transferring from acute to primary care, accounting for 41 per cent of preventable hospital readmissions. This project aims to identify risk factors for readmission and barriers to successful transitions of care for high-risk patient groups (including the elderly, paediatric and mental health patients), it will then apply these findings to provide effective, measurable and cost-efficient protocols to improve discharge transition outcomes for patients, carers and health service providers. Research outcomes will have general relevance to Australian healthcare settings and include the development of ‘The Safe Transition Communications Tool.’Read moreRead less
Synthesis of chemically well-defined and biocompatible oligopyrroles for tissue engineering applications. Modern methods of synthesis will be used to prepare chemically well-defined and structurally novel materials capable of facilitating the regeneration of damaged nerves and bone structures. This should lead to new means for treating degenerative diseases and major injuries, events that impact on hundreds of thousands of Australians each year.
Soft nanotubes for biomedical applications. Nature employs self-assembly of small molecules to build complex materials. This project will mimic natural self-assemblies to design synthetic tubular structures on the nanoscale, and apply these nanostructures to solve problems in the fields of biology and medicine.
Linkage Infrastructure, Equipment And Facilities - Grant ID: LE110100141
Funder
Australian Research Council
Funding Amount
$1,294,000.00
Summary
Facility for in-situ nuclear magnetic resonance of advanced materials and devices. This unique characterisation facility will support and enhance high-quality research in four key areas: electro-materials and nanotechnology, light metal alloys, biotechnology and energy related devices. This research will lead to new materials and new technologies in clean energy, carbon dioxide capture and health care.
Nanoscale control of energy and matter for future energy-efficient technologies. Unprecedented control of energy and matter in nanoscale fabrication will be achieved using non-equilibrium self-organised plasma-solid systems. The outcomes will lead to energy-efficient, environment- and human-health-friendly production of nanomaterials for future energy, health, information, food, water, environmental and security technologies.