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Field of Research : Atomic And Molecular Physics
Socio-Economic Objective : Biological sciences
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  • Researchers (24)
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  • Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE0452650

    Funder
    Australian Research Council
    Funding Amount
    $696,005.00
    Summary
    South Australian Virtual Reality Centre (SAVRC). It is proposed to install a fully immersive three dimensional visualisation facility in Adelaide, at a cost of $5.3 million including requested ARC contribution of $696,005. Applicant Institutions (Adelaide, Flinders, UniSA and Curtin universities) and Industry will provide the remainder. The facility will support South Australia's leading scientific researchers in the sciences, engineering, business management, carbon dioxide sequestration, p .... South Australian Virtual Reality Centre (SAVRC). It is proposed to install a fully immersive three dimensional visualisation facility in Adelaide, at a cost of $5.3 million including requested ARC contribution of $696,005. Applicant Institutions (Adelaide, Flinders, UniSA and Curtin universities) and Industry will provide the remainder. The facility will support South Australia's leading scientific researchers in the sciences, engineering, business management, carbon dioxide sequestration, petroleum exploration and production, space environment, bioinformatics, architecture, surgery, dentistry, archaeology and arts. The facility will enable researchers and industry to significantly leverage other projects leading to much improved research outcomes and efficiency, potentially worth a hundred million dollars or more.
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    Funded Activity

    Discovery Projects - Grant ID: DP0346380

    Funder
    Australian Research Council
    Funding Amount
    $291,035.00
    Summary
    Superfluid helium nanodroplet spectroscopy. Molecules trapped in a helium nanodroplet find themselves in an ultracold liquid environment from which they cannot escape. As such, the molecules are forced to interact and this is studied at a resolution that is unrivaled in condensed phase spectroscopy. This technique will be used to create new materials and study the dynamics behind a large range of chemical processes. The results are expected to lead to a greater understanding of condensed phase c .... Superfluid helium nanodroplet spectroscopy. Molecules trapped in a helium nanodroplet find themselves in an ultracold liquid environment from which they cannot escape. As such, the molecules are forced to interact and this is studied at a resolution that is unrivaled in condensed phase spectroscopy. This technique will be used to create new materials and study the dynamics behind a large range of chemical processes. The results are expected to lead to a greater understanding of condensed phase chemistry and chemical reactions in general.
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    Funded Activity

    Discovery Projects - Grant ID: DP0986040

    Funder
    Australian Research Council
    Funding Amount
    $280,000.00
    Summary
    A New Window on Photosynthesis: Ultrafast Coherence Dynamics in Biomolecules and Semiconductor Nanostructures. Recent research has indicated that the remarkable efficiency of energy capture and transfer in photosynthesis may be due to the effects of quantum coherence, which is an intrinsically non-classical phenomenon. We will investigate these effects in biological and nanofabricated systems using ultrafast laser spectroscopy . An understanding of these energy transfer processes may open the d .... A New Window on Photosynthesis: Ultrafast Coherence Dynamics in Biomolecules and Semiconductor Nanostructures. Recent research has indicated that the remarkable efficiency of energy capture and transfer in photosynthesis may be due to the effects of quantum coherence, which is an intrinsically non-classical phenomenon. We will investigate these effects in biological and nanofabricated systems using ultrafast laser spectroscopy . An understanding of these energy transfer processes may open the door to the development to a range of new technologies, including clean and virtually limitless energy sources that convert solar energy directly into useful power and quantum computers that will revolutionize our ability to process information.
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    Funded Activity

    Discovery Projects - Grant ID: DP0662955

    Funder
    Australian Research Council
    Funding Amount
    $310,000.00
    Summary
    Electron and Positron Interactions with Bio-Molecules. This program of research will quantify reaction rates and elucidate reaction pathways for a range of important processes in our bodies involving ionising radiation. It will lead to a greatly improved understanding of positron and electron interactions with biological systems, including DNA and its constituent molecules and, through a better understanding of the underlying fundamental interactions, will lay foundations for improvements in te .... Electron and Positron Interactions with Bio-Molecules. This program of research will quantify reaction rates and elucidate reaction pathways for a range of important processes in our bodies involving ionising radiation. It will lead to a greatly improved understanding of positron and electron interactions with biological systems, including DNA and its constituent molecules and, through a better understanding of the underlying fundamental interactions, will lay foundations for improvements in technologies such as PET imaging.
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    Funded Activity

    Linkage - International - Grant ID: LX0561315

    Funder
    Australian Research Council
    Funding Amount
    $16,000.00
    Summary
    Joint Theoretical and Experimental Electron Momentum Spectroscopic Studies for DNA Bases. The study of DNA structure is an area of intense research activity and continues to reveal new levels of complexity and diversity. Recent experiments (Science, 2002) provided direct evidences of the adenine non-planarity, indicating non-rigidity of DNA bases. Electron momentum spectroscopy (EMS) has been identified to be an appropriate technique in the study of chemical binding mechanism and orbitals at mol .... Joint Theoretical and Experimental Electron Momentum Spectroscopic Studies for DNA Bases. The study of DNA structure is an area of intense research activity and continues to reveal new levels of complexity and diversity. Recent experiments (Science, 2002) provided direct evidences of the adenine non-planarity, indicating non-rigidity of DNA bases. Electron momentum spectroscopy (EMS) has been identified to be an appropriate technique in the study of chemical binding mechanism and orbitals at molecular level. The aims of the project is to study orbitals and interactions of DNA and RNA bases such as adenine, thymine (uracil), guanine and cytosine using momentum space quantum mechanics and EMS experimental techniques. The outcome of the project will improve our understanding of the DNA double helical strand structure.
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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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