Uploaded February 2026 | Updated September 2026, 2 weeks ago
In January Pawsey attended the SCA/HPCAsia 2026 conference in Osaka, Japan.
Our Quantum Supercomputing Researcher Lead Pascal Elahi, Manager Partner Relations Aditi Subramanya and Senior Storage Systems Administrator Team Lead Chris Schlipalius ran a series of workshops and Birds of a Feathers.
Our team, alongside National Computational Infrastructure (NCI) – represented Australia's HPC to the rest of the world.
A lot of talks were given, a lot of koalas were given out, and a lot of
conversations were had, both at the booth and across the conference.
This was a great opportunity to share the work that Australia's supercomputers are offering the nation's researchers - advancing our understanding of physics, life sciences, climate science, data science, and more.
#sca #hpcasia #hpcasia2026 #supercomputing #quantum #datastorage
In January Pawsey attended the SCA/HPCAsia 2026 conference in Osaka, Japan.
Our Quantum Supercomputing Researcher Lead Pascal Elahi, Manager Partner Relations Aditi Subramanya and Senior Storage Systems Administrator Team Lead Chris Schlipalius ran a series of workshops and Birds of a Feathers.
Our team, alongside National Computational Infrastructure (NCI) – represented Australia's HPC to the rest of the world.
A lot of talks were given, a lot of koalas were given out, and a lot of
conversations were had, both at the booth and across the conference.
This was a great opportunity to share the work that Australia's supercomputers are offering the nation's researchers - advancing our understanding of physics, life sciences, climate science, data science, and more.
#sca #hpcasia #hpcasia2026 #supercomputing #quantum #datastorage



![2024PawseyInternKSchrick
Ionisation within ion-atom collisions is a process of significant interest due to its wide-ranging applications. Accuracy of cross-section data is essential when considering application to fields such as hadron therapy where preventing harm to patients is of paramount importance. Modelling ionisation is particularly challenging due to the motion of the ejected electron in both the projectile and residual target fields after the collision. This requires a theory that accounts for the interactions between all the particles within two-centre formalism. The two-centre wave-packet convergent close-coupling (WP-CCC) method developed within our group [Abdurakhmanov et al., Phys. Rev. A 104 (2021) 042820] is designed to do just that. Total ionisation cross sections have been calculated [Abdurakhmanov et al., Phys. Rev. A 94 (2016) 022703], however, a more stringent test of theory is the singly differential cross section. Previously, variations of the CCC method, using fully quantum-mechanical [Abdurakhmanov et al., J. Phys. B 44 (2011) 165203] and Laguerre [McGovern et al., Phys. Rev. A 79 (2009) 042707] continuum wave functions, predicted singly differential cross sections (SDCS) monotonically decreasing with increasing ejected electron energy at all incident projectile energies. The WP-CCC approach on the other hand, exhibits a maximum away from the zero-energy point, most evident for projectile energies below 50 keV [Abdurakhmanov et al., Phys. Rev. A 94 (2016) 022703]. The aim of this project is to investigate this problem and recalculate the singly differential ionisation cross section for multiple collision systems. 2024PawseyInternKSchrick](https://i.ytimg.com/vi/Kl_6N4ZAMdw/mqdefault.jpg)






