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  • Funded Activity

    Discovery Projects - Grant ID: DP0343986

    Funder
    Australian Research Council
    Funding Amount
    $205,035.00
    Summary
    Intermolecular interactions revisited-Flaws in the fabric and applications to lower-dimensional structures. This project aims to capitalise on recent developments, that have shown that previously accepted theories are deeply flawed, in various applications in fundamental physics and in unsolved problems in biology that involve electromagnetic fields. Interactions driven by electromagnetic fluctuation forces, and real photon exchange, between molecules will be investigated. The project will inv .... Intermolecular interactions revisited-Flaws in the fabric and applications to lower-dimensional structures. This project aims to capitalise on recent developments, that have shown that previously accepted theories are deeply flawed, in various applications in fundamental physics and in unsolved problems in biology that involve electromagnetic fields. Interactions driven by electromagnetic fluctuation forces, and real photon exchange, between molecules will be investigated. The project will investigate how dispersion interactions change in mesoscopic pores, in electrolytes, and at finite temperatures. Applications involve catalysis, molecular formation, and quantum logic. The project also aims to develop a unified theory for energy and charge transfer, relevant for photosynthesis and the way biological molecules transfer information.
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    Funded Activity

    Discovery Projects - Grant ID: DP0558962

    Funder
    Australian Research Council
    Funding Amount
    $300,000.00
    Summary
    Quantum Mechanics and Planetary Atmospheres. The project will increase the visibility and status of Australian research, by the participation of researchers and students in a wide international collaboration, covering experiments, theory, and computation, which will solve a fundamental research problem that has previously defied understanding. The resulting nitrogen model will be relevant to the important fields of global and planetary atmospheric change, and will find immediate application in t .... Quantum Mechanics and Planetary Atmospheres. The project will increase the visibility and status of Australian research, by the participation of researchers and students in a wide international collaboration, covering experiments, theory, and computation, which will solve a fundamental research problem that has previously defied understanding. The resulting nitrogen model will be relevant to the important fields of global and planetary atmospheric change, and will find immediate application in the analysis of results from the NASA missions, Voyager, Cassini, and (later) New Horizons. In the experimental part of the project, an Australian-first extreme-ultraviolet laser facility will be developed which will provide research opportunities complementary to the Australian Synchrotron.
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    Funded Activity

    Discovery Projects - Grant ID: DP0451310

    Funder
    Australian Research Council
    Funding Amount
    $370,000.00
    Summary
    Synchrotron developments of new techniques in X-ray interactions with matter, resolving major discrepancies in Quantum Physics and Chemistry. Synchrotron science is a priority area for Australia, the USA, and most first world countries. Development of new ideas and tools for X-ray investigations is the key to future opportunities and is the subject of this proposal. We will develop new techniques for crystallographic electron-density studies, X-ray Anomalous Fine Structure (XAFS) and Multiple-wa .... Synchrotron developments of new techniques in X-ray interactions with matter, resolving major discrepancies in Quantum Physics and Chemistry. Synchrotron science is a priority area for Australia, the USA, and most first world countries. Development of new ideas and tools for X-ray investigations is the key to future opportunities and is the subject of this proposal. We will develop new techniques for crystallographic electron-density studies, X-ray Anomalous Fine Structure (XAFS) and Multiple-wavelength Anomalous Dispersion (MAD), and provide useful advances for X-ray lithography and radiography. Simultaneous investigation of form factors, absorption coefficients, anomalous dispersion and X-ray scattering will provide new experimental tests of relativistic atomic wavefunction calculations, molecular bonding and solid state coupled cluster theory. Major discrepancies will be resolved.
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    Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE0882382

    Funder
    Australian Research Council
    Funding Amount
    $245,000.00
    Summary
    Biophysical Characterisation Facility. The protein analysis facility will have substantial benefits for basic science and biotechnology. It will create capacity for South Australian researchers to study proteins at the biophysical level. The facility will support research projects within the designated national research priority areas of 'Frontier technologies for building and transforming Australian industries' and 'Promoting and maintaining good health
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    Funded Activity

    Discovery Projects - Grant ID: DP0343499

    Funder
    Australian Research Council
    Funding Amount
    $209,035.00
    Summary
    A hierarchical quantum mechanical and classical simulation of biological ion channels. I aim to develop a methodology incorporating molecular quantum mechanics and classical Brownian mechanics in a way that can be applied practically to large macromolecular systems, thus relating fine structural details to experimentally measurable properties. Specifically, I will apply this methodology to study ion channels in which the challenge is to relate electronic and atomic structure to the conduct .... A hierarchical quantum mechanical and classical simulation of biological ion channels. I aim to develop a methodology incorporating molecular quantum mechanics and classical Brownian mechanics in a way that can be applied practically to large macromolecular systems, thus relating fine structural details to experimentally measurable properties. Specifically, I will apply this methodology to study ion channels in which the challenge is to relate electronic and atomic structure to the conductance properties of the channel. Accurately determining these relationships provides a pathway to developing cures for many neurological, cardiac, and muscular diseases.
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