The characterisation of planetary materials
ANSTO provides a range of capabilities using neutrons, X-rays and infrared radiation to study the solids, liquids and gases that might be found in materials in our solar system and beyond.
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ANSTO provides a range of capabilities using neutrons, X-rays and infrared radiation to study the solids, liquids and gases that might be found in materials in our solar system and beyond.
ANSTO environmental scientists have alerted the scientific community of the critical need to monitor changes to ice containing potential nuclear fallout that reached Antarctica from 20th century atmospheric weapons testing.
Soft x-rays are generally understood to be x-rays in the energy range 100-3,000 eV. They have insufficient energy to penetrate the beryllium window of a hard x-ray beamline but have energies higher than that of extreme ultraviolet light.
Researchers from UNSW have found an extraordinary material that does expand or contract over an extremely wide temperature range and may be one of the most stable materials known.
Sample environments, Data analysis and reduction on the Koala instrument.
Australia and Sri Lanks signs new partnership to fight chronic kidney disease.
Two startups supported by the nandin Innovation Centre at ANSTO have hit the ground running in 2021 securing major opportunities from state governments to see their businesses thrive.
Airbus Australia Pacific has provided students participating in ANSTO’s National Graduate Innovation Forum with a practical challenge relating to technology that is exposed to damaging radiation in space.
Using nuclear techniques to help sustain Australia's finite groundwater resources
With all excavation completed and rock removed from the underground site, the physics lab will now be built within the caverns of the Stawell Mines site.
A lesson in Science and Sustainability.
The High Performance Macromolecular Crystallography beamline will enable the study of very small (sub-5 micrometre) or weakly diffracting crystals, providing a state-of-the-art high-throughput facility for researchers. MX3 will be able to study the structures of large proteins and protein complexes for virology, drug design and industrial applications via goniometer mounted crystals, in-tray screening, or via serial crystallography methods.