Researchers developed a smart textile that can sense and move like a muscle, enabling new device applications. The textile generates a mechanical work capacity and power output higher than human muscles, with potential uses in robotics, sensors, and smart clothing.
A new handheld 3D printing device has been developed to create bespoke scaffolds for cartilage repair, with cell survival rates in excess of 97%. The BioPen allows surgeons to sculpt customised implants during surgery, addressing the challenge of precise geometry.
Researchers at ARC Centre of Excellence for Electromaterials Science have created wearable structures that detect human movement using knitted and braided fibres. The fabrics can also store energy required to power such functions, enabling new applications in sports training and rehabilitation.
Researchers at ARC Centre of Excellence for Electromaterials Science develop a 6-layered structure incorporating neural cells, mimicking brain tissue. The breakthrough enables important insights into brain function and provides an experimental test bed for new drugs and electroceuticals.
Researchers have developed a new type of 4D printing material that can transform into different shapes in response to water or heat. The technology has the potential to revolutionize fields such as medicine and construction, with applications including soft robotics and autonomous valves.