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Australian State/Territory : QLD
Scheme : Discovery Projects
Research Topic : MAGNETIC RESONANCE
Australian State/Territory : VIC
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  • Funded Activity

    Discovery Projects - Grant ID: DP0773169

    Funder
    Australian Research Council
    Funding Amount
    $239,090.00
    Summary
    Decoherence in quantum computing and quantum electromechanical systems. Australia is one of the world leaders in fundamental studies and implementation of quantum computing and quantum electromechanical systems. By developing a framework to quantify and control noise due to decoherence in such systems, this research will facilitate progress in the development and understanding of quantum computing and quantum electromechanical devices. The project will also significantly strengthen the general r .... Decoherence in quantum computing and quantum electromechanical systems. Australia is one of the world leaders in fundamental studies and implementation of quantum computing and quantum electromechanical systems. By developing a framework to quantify and control noise due to decoherence in such systems, this research will facilitate progress in the development and understanding of quantum computing and quantum electromechanical devices. The project will also significantly strengthen the general representation of research on decoherence, a field of crucial importance to many areas of theoretical and experimental physics, in Australia. Funding of this project will enable Australia to further expand its leading position in cutting-edge science and next-generation technology.
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    Funded Activity

    Discovery Projects - Grant ID: DP0984522

    Funder
    Australian Research Council
    Funding Amount
    $631,000.00
    Summary
    Ultracold atomic Fermi gases in the strongly interacting regime: A new frontier of quantum many-body physics. Ultra-cold atoms are one of the most rapidly developing areas in twenty-first century physics. The scientific importance of studying strongly interacting Fermi gases is indicated by the fact that five Nobel prizes in physics have been awarded in fields relevant to ultra-cold atoms in the last decade. Australia is now developing a reputation for world-class research in this new area, with .... Ultracold atomic Fermi gases in the strongly interacting regime: A new frontier of quantum many-body physics. Ultra-cold atoms are one of the most rapidly developing areas in twenty-first century physics. The scientific importance of studying strongly interacting Fermi gases is indicated by the fact that five Nobel prizes in physics have been awarded in fields relevant to ultra-cold atoms in the last decade. Australia is now developing a reputation for world-class research in this new area, with new cold-fermion experiments now underway in Melbourne. This project will build national and international cooperation in this field, provide world-class research training opportunities and advance Australia's leadership position. As well as improving scientific understanding, it has the potential to lead to new energy-saving technologies in future.
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    Funded Activity

    Discovery Projects - Grant ID: DP0880404

    Funder
    Australian Research Council
    Funding Amount
    $671,888.00
    Summary
    Dynamics and correlations of many-body systems. The proposed program will greatly enhance Australian science through linking innovative theoretical techniques with the successful ongoing Australian experimental program in atom lasers, atom chip interferometry and ultra-cold fermions. Pioneering theoretical methods in quantum phase-space are internationally recognized, and will be extended into new areas relevant to Australia. These have fundamental significance to fields ranging from nanotec .... Dynamics and correlations of many-body systems. The proposed program will greatly enhance Australian science through linking innovative theoretical techniques with the successful ongoing Australian experimental program in atom lasers, atom chip interferometry and ultra-cold fermions. Pioneering theoretical methods in quantum phase-space are internationally recognized, and will be extended into new areas relevant to Australia. These have fundamental significance to fields ranging from nanotechnology to astrophysics, as well as providing a route to improved atomic clocks and other instruments. Combining these theoretical and computational methods from the physical sciences with biology and genetics will provide future cross-disciplinary benefits to Australian biomedical science.
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    Funded Activity

    Discovery Projects - Grant ID: DP170100131

    Funder
    Australian Research Council
    Funding Amount
    $571,500.00
    Summary
    Non-equilibrium material phases. This project aims to synthesise and characterise exotic materials produced in the laboratory under conditions that replicate those inside planets and stars. Highly non-equilibrium processing methods are needed to find entirely new material forms of elements and compounds created under extreme pressure and temperature. The project will use its laser-based synthesis method to explore and understand the non-equilibrium pathways and develop new materials. Understandi .... Non-equilibrium material phases. This project aims to synthesise and characterise exotic materials produced in the laboratory under conditions that replicate those inside planets and stars. Highly non-equilibrium processing methods are needed to find entirely new material forms of elements and compounds created under extreme pressure and temperature. The project will use its laser-based synthesis method to explore and understand the non-equilibrium pathways and develop new materials. Understanding how these materials form could lead to the next materials revolution. This research will lead to materials that industry sectors can exploit for commercial benefits.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP240102006

    Funder
    Australian Research Council
    Funding Amount
    $484,097.00
    Summary
    Controllable quantum phases in two-dimensional metal-organic nanomaterials. This project aims to design novel two-dimensional metal-organic nanomaterials and to control electronic quantum phases therein. The project expects to generate new fundamental knowledge in advanced materials, solid-state physics and quantum nanoscience. It will rely on supramolecular chemistry to synthesise new atomically precise functional materials. Expected outcomes include the fabrication of new advanced nanomaterial .... Controllable quantum phases in two-dimensional metal-organic nanomaterials. This project aims to design novel two-dimensional metal-organic nanomaterials and to control electronic quantum phases therein. The project expects to generate new fundamental knowledge in advanced materials, solid-state physics and quantum nanoscience. It will rely on supramolecular chemistry to synthesise new atomically precise functional materials. Expected outcomes include the fabrication of new advanced nanomaterials, as well as the observation and control of new quantum phenomena therein. The project should provide significant benefits, such as advancing basic research in quantum nanomaterials, and aiding to lay the foundation for next-generation electronics and information technologies.
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