Building on our highly interdisciplinary track-record in soft materials, we will reimagine the use and reuse of materials themselves - from taonga 3D printed from traditional Māori materials, to creating a form of artificial cells that self-regulate and reconfigure for different functions.
Our research will support New Zealand's goal for 'net zero' carbon emissions by 2050. We will explore new materials that will catch CO2 from air and waste streams. We'll also design new catalysts that will turn CO2 into green fuels.
Read more about Towards Zero Carbon - Catalytic Architectures
The data centres worldwide that support our digital lifestyles use almost ten times as much electricity per year as the whole of NZ. We will develop computing materials that process information more like a brain, and that use far less energy than conventional electronics.
Read more about Towards Low Energy Tech - Hardware for Future Computing
Crosscutting these Research Programmes sits our Mātauranga Māori Research Programme. This programme provides a platform for the other research programmes, intersecting with the theme of sustainability.
Read more about Sustainable Resource Use - Mātauranga Māori Research Programme
March 11, 2025
As part of International Women's Day IWD2025, we're celebrating our younger researchers and some of …
October 17, 2024
We are delighted to announce the continued funding of the Discovery Scholarship Programme, for Māori…
February 20, 2019
October 16, 2023
News Article
March 4, 2025
News Article
February 19, 2025
We are a network of committed biologists, chemists, physicists and engineers who collaborate to develop innovations that will both solve big problems and boost the New Zealand economy.
Our research is creating new technologies to aid the transition to a more sustainable way of life and make our world a better place.
We have ongoing partnerships with community groups, museums and other organisations to help us take science out of the lab to make it accessible, exciting and inspiring.
Dong, Y., Ai, F., Sun-Waterhouse, D., Murai, K.-I., Moriga, T. & Waterhouse, G. I. N. Optical and Photocatalytic Properties of Three-Dimensionally Ordered Macroporous Ta2O5 and Ta3N5 Inverse Opals. Chemistry of Materials 35, 8281–8300 (2023). https://doi.org/10.1021/acs.chemmater.3c01903
Schuyt, J. J., Williams, G. V. M. & Chong, S. V. Long-Lived UV-Rewritable Luminescent Memory in a Fluoroperovskite Crystal. Advanced Optical Materials, 2302553 (2023). https://doi.org/10.1002/adom.202302553
Studholme, S. J., Heywood, Z. E., Mallinson, J. B., Steel, J. K., Bones, P. J., Arnold, M. D. & Brown, S. A. Computation via neuron-like spiking in percolating networks of nanoparticles. Nano Letters 23, 10594 (2023). https://doi.org/10.1021/acs.nanolett.3c03551
Chang, Z., Zhu, B., Liu, J., Dong, H., Hao, Y., Zhou, Y., Travas-Sejdic, J. & Xu, M. "Signal-on" electrochemical detection of BACE1 for early detection of Alzheimer's disease. Cell Reports Physical Science, 101632 (2023). https://doi.org/10.1016/j.xcrp.2023.101632
Stewart, G. T., Barbarich-Unasa, T. W., Enari, D., Faumuina, C., Heke, D., Henare, D., Lolohea, T., Phillips, M., Port, H., Staniland, N., Tapuni, N., Teaurere, R., Ualesi, Y., Walker, L., Devine, N. & Matapo, J. Experiences of indigenous (Māori/Pasifika) early career academics. Educational Philosophy and Theory (2023). https://doi.org/10.1080/00131857.2023.2271649
Associate Investigator
Functional Nanostructures, Towards Zero Waste - Reconfigurable Systems
I’m focused on exploring fundamental chemical principles to answer complex biological questions.
Emeritus Investigator
My research interests include commercialisation of scientific research, entrepreneurship and the growth of high-tech firms, innovation strategy and policy.