A research team has taken inspiration from principles found in nature and developed the "hyperelastic torque reversal mechanism" (HeTRM), which...
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Recently, a research team uncovered the propagation and toughening mechanism of tortuous crack front in bioinspired anisotropic heterogeneities, and developed an optimization design for toughness amplification by manipulating microstructural orientation. Their work was published in Nature Communications.
A research team has taken inspiration from principles found in nature and developed the "hyperelastic torque reversal mechanism" (HeTRM), which...
Scientists from Leiden University and the SLAC National Laboratory have finally uncovered why platinum electrodes corrode under certain conditions, a...
Researchers at Lawrence Livermore National Laboratory (LLNL) have developed a novel, integrated modeling approach to identify and improve key...
Researchers at the Terasaki Institute for Biomedical Innovation have developed an innovative delivery system that could significantly improve the...
A new study led by researchers from Moffitt Cancer Center, in collaboration with the University of Michigan, suggests that artificial intelligence...
The Korea Research Institute of Standards and Science has successfully developed a high-quality compound semiconductor material for ultra-sensitive...
Inspired by the movement of insects gliding on the surface of water, University of Waterloo researchers have designed tiny robots controlled by light,...
Apple researchers have developed a new framework for making non-humanoid robots move more naturally and expressively during interactions with people,...
Using HeTRM, energy can be stored in a flexible joint and then released instantly, allowing it to wrap around objects, much like an octopus. Credit:...
A research group from Chalmers and the MAX IV Laboratory has developed a new method that provides insights into how natural materials, such as...