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Nanostructured ferroic oxides: Why does defect-induced nanoscale heterogeneity matter? Ferroic oxides are an important class of functional materials used in applications such as storage memories, medical devices and smart sensors. This project will significantly impact the fundamental understanding and development of ferroic devices by revealing the underpinning interface mechanisms that govern their behaviour in nanostructured form.
Discovery Early Career Researcher Award - Grant ID: DE180100167
Funder
Australian Research Council
Funding Amount
$349,600.00
Summary
Unravelling the spin transport properties in organic spintronic devices. This project aims to understand and control spin transport properties in organic semiconductors (OSC) and develop novel organic spintronic devices. OSCs have become the centre of attention in the spintronics community as they have very small spin-orbit coupling and hyperfine interactions, which lead to very long spin coherence times and make them ideal for spin transport. However, the basic mechanisms of spin injection, tra ....Unravelling the spin transport properties in organic spintronic devices. This project aims to understand and control spin transport properties in organic semiconductors (OSC) and develop novel organic spintronic devices. OSCs have become the centre of attention in the spintronics community as they have very small spin-orbit coupling and hyperfine interactions, which lead to very long spin coherence times and make them ideal for spin transport. However, the basic mechanisms of spin injection, transport, and manipulation in OSCs are still obscure. The project expects to clarify the spin-dynamics, which will advance our understandings of spin transport in OSCs and could contribute to the development of spin-based molecular electronics for future applications.Read moreRead less
Self-cleaning thin films for anti-reflective solar cell coatings. This project addresses an important industry need by designing a new class of functional composite coatings for efficiency and durability improvement of solar cells. A successful outcome will provide an important breakthrough in thin film technology applicable not only to solar panels but also other coating applications.
Linkage Infrastructure, Equipment And Facilities - Grant ID: LE150100043
Funder
Australian Research Council
Funding Amount
$420,000.00
Summary
New generation cryogen-free Physical Property Measurement System . New generation cryogen-free physical property measurement system: This project aims to establish a unique Australian research facility, a cryogen-free high magnetic field Dynacool Physical Property Measurement System (PPMS). With its comprehensive and versatile set of tools for precise electro- and opto-magnetic characterisation, the facility is expected to drive interdisciplinary collaborative efforts between over 50 researchers ....New generation cryogen-free Physical Property Measurement System . New generation cryogen-free physical property measurement system: This project aims to establish a unique Australian research facility, a cryogen-free high magnetic field Dynacool Physical Property Measurement System (PPMS). With its comprehensive and versatile set of tools for precise electro- and opto-magnetic characterisation, the facility is expected to drive interdisciplinary collaborative efforts between over 50 researchers and across more than 25 Australian Research Council and other projects, with the aim to uncover new unconventional phenomena in superconductors, spintronic materials, topological insulators, conducting polymers, one- and two-dimensional micro- and nano-materials, and bio-magnetic materials.Read moreRead less
Solar rechargeable batteries for wearable electronics. This project aims to develop a new solar battery as a sustainable power source for future wearable electronics. The research will develop solar rechargeable Zinc-Manganese oxide batteries based on new stretchable microelectrodes and materials engineering for the direct storage of solar energy. Expected outcomes include new classes of planar-type solar batteries, functional microelectrodes and energy materials, as well as new knowledge genera ....Solar rechargeable batteries for wearable electronics. This project aims to develop a new solar battery as a sustainable power source for future wearable electronics. The research will develop solar rechargeable Zinc-Manganese oxide batteries based on new stretchable microelectrodes and materials engineering for the direct storage of solar energy. Expected outcomes include new classes of planar-type solar batteries, functional microelectrodes and energy materials, as well as new knowledge generated from collaborations across materials science, photoelectrochemistry and nanotechnology disciplines. These will not only expand the applications of solar batteries to a new domain of wearable electronics, but also may eventually lead to new industry advances in functional materials for clean energy.Read moreRead less
Enhancing biopharmaceuticals: A disruptive bioseparation resin technology. This project aims to develop an innovative and disruptive platform technology for designing and manufacturing tailor-made high-performance bioseparation resins to enhance biopharmaceuticals manufacturing. Bacterial cell factories will be developed to enable biotechnological production of innovative polyester bead-based bioseparation resins, which will revolutionise manufacturing of biopharmaceuticals. Expected outcomes o ....Enhancing biopharmaceuticals: A disruptive bioseparation resin technology. This project aims to develop an innovative and disruptive platform technology for designing and manufacturing tailor-made high-performance bioseparation resins to enhance biopharmaceuticals manufacturing. Bacterial cell factories will be developed to enable biotechnological production of innovative polyester bead-based bioseparation resins, which will revolutionise manufacturing of biopharmaceuticals. Expected outcomes of this project are cost-effective and strongly enhanced approaches for biopharmaceuticals recovery, thereby providing significant benefits to accelerate research and development in early stage discovery and manufacture of biologics, therapeutic proteins and vaccines.Read moreRead less
Designing new layered materials for efficient solar energy conversion. This project will address the important material need for efficient solar energy conversion and environmental purification. These advanced materials will provide innovative solar utilisation technologies for economical water purification, self-cleaning coatings, and improved process for hydrogen production.
Linkage Infrastructure, Equipment And Facilities - Grant ID: LE110100017
Funder
Australian Research Council
Funding Amount
$300,000.00
Summary
An integrated system for measuring thermoelectric properties of advanced materials. This facility will establish an integrated measuring system which will form the key step in developing thermoelectric materials. The instruments will support groundbreaking research in developing advanced materials with significant economic and environmental benefits for many industries, such as materials manufacturing and improving automobile energy efficiency.
Designing plasmon-enhanced photocatalysts for solar-driven water pollutant removal. The outcomes of this program will lead to a new class of composite photocatalysts for efficient water purification using sunlight. Such technology will speed up the transition of Australian environmental and energy industries from a fossil fuel economy to renewable energy economy.
Boosting photosynthetic efficiency using a plant nanobionics approach. The project aims to improve light capture and enhance electron transport rates using a plant nanobionics approach. Biocompatible plasmonic low-dimensional transition metal oxides with unique optical and electronics properties will be selected as the bioinspired materials. The investigation will focus on developing oxide compounds as artificial antenna, capturing extended optical wavelengths that are not normally available to ....Boosting photosynthetic efficiency using a plant nanobionics approach. The project aims to improve light capture and enhance electron transport rates using a plant nanobionics approach. Biocompatible plasmonic low-dimensional transition metal oxides with unique optical and electronics properties will be selected as the bioinspired materials. The investigation will focus on developing oxide compounds as artificial antenna, capturing extended optical wavelengths that are not normally available to natural plants. Energetic hot electrons excited from plasmonic materials injected into the plant system will further be explored, achieving unprecedented energy conversion from solar to chemical. The anticipated findings will provide a strong base to develop new plant systems with improved photosynthetic efficiency.Read moreRead less