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Research Topic : PLASMA
Australian State/Territory : NSW
Field of Research : Particle Physics
Status : Closed
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Atomic, Molecular, Nuclear, Particle and Plasma Physics (13)
Particle Physics (13)
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  • Funded Activities (13)
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  • Funded Activity

    Enabling The Future Of The Australian Collider Physics Program.

    Funder
    Australian Research Council
    Funding Amount
    $864,000.00
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    Funded Activity

    ARC Future Fellowships - Grant ID: FT120100745

    Funder
    Australian Research Council
    Funding Amount
    $714,507.00
    Summary
    Probing the structure of exotic mesons, at the Large Hadron Collider and beyond. Unexpected new particles, outside the bounds of current textbooks, present one of the most interesting puzzles in physics. This project will search for more of these particles at the Large Hadron Collider at CERN, and at new facilities in Japan and Germany that will change particle physics in the coming decade.
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    Funded Activity

    Discovery Projects - Grant ID: DP170102389

    Funder
    Australian Research Council
    Funding Amount
    $255,000.00
    Summary
    Rare decays of B mesons: Probing new physics with Belle II. This project aims to observe the decay of a B meson to a muon and a neutrino, a rare subatomic process. This will test understanding of the basic building blocks and forces of nature. If the measured and expected decay rates are different, this would be significant. The project also seeks to enhance Australia's role in a major physics experiment based in Japan. This project will contribute to a deeper understanding of our place in the U .... Rare decays of B mesons: Probing new physics with Belle II. This project aims to observe the decay of a B meson to a muon and a neutrino, a rare subatomic process. This will test understanding of the basic building blocks and forces of nature. If the measured and expected decay rates are different, this would be significant. The project also seeks to enhance Australia's role in a major physics experiment based in Japan. This project will contribute to a deeper understanding of our place in the Universe.
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    Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE150100076

    Funder
    Australian Research Council
    Funding Amount
    $150,068.00
    Summary
    Australian Participation in the Belle II Experiment. Australian participation in the Belle II experiment: This project will provide membership for Australian scientists of one of the key contemporary particle physics experiments, the Belle II experiment in Japan, and contribute to the purchase and installation of equipment for the Japanese facility. The Belle II experiment aims to search for a deeper theory of nature which will add significantly to our ability to answer questions such as why the .... Australian Participation in the Belle II Experiment. Australian participation in the Belle II experiment: This project will provide membership for Australian scientists of one of the key contemporary particle physics experiments, the Belle II experiment in Japan, and contribute to the purchase and installation of equipment for the Japanese facility. The Belle II experiment aims to search for a deeper theory of nature which will add significantly to our ability to answer questions such as why there is a preponderance of matter over antimatter in the Universe, and what is the nature of the dark matter which pervades it. This project will allow Australian scientists to pursue these questions in the coming years, with the additional benefit of increasing Australia's research profile in fundamental physics and its engagement with basic science in the Asia-Pacific region.
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    Funded Activity

    Discovery Projects - Grant ID: DP170102204

    Funder
    Australian Research Council
    Funding Amount
    $284,988.00
    Summary
    Antimatter and exotic mesons at the intensity frontier. This project aims to measure anti-proton and anti-neutron interactions in the calorimeter, a piece of equipment central to the Belle experiment in Japan. Antimatter is used every day in particle physics, but is not fully understood. The Belle dataset is large and directly applicable to the renewed Belle II experiment, due to commence in late 2018. The anticipated outcome is an improved ability to recognise different particles and measure th .... Antimatter and exotic mesons at the intensity frontier. This project aims to measure anti-proton and anti-neutron interactions in the calorimeter, a piece of equipment central to the Belle experiment in Japan. Antimatter is used every day in particle physics, but is not fully understood. The Belle dataset is large and directly applicable to the renewed Belle II experiment, due to commence in late 2018. The anticipated outcome is an improved ability to recognise different particles and measure their energies. This project is intended to contribute to Belle II, enhancing the experiment’s research outcomes, including understanding the matter-antimatter asymmetry of the Universe and the nature of exotic mesons.
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    Funded Activity

    ARC Future Fellowships - Grant ID: FT120100010

    Funder
    Australian Research Council
    Funding Amount
    $567,578.00
    Summary
    In search of the origin of mass at the Large Hadron Collider. This project will utilise new theoretical ideas and worldwide experimental efforts at the Large Hadron Collider with the aim to resolve one of the most profound mysteries of modern physics, the origin of mass in the universe. The results will have an important longstanding impact by promoting innovation culture and public education of science.
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    Funded Activity

    Discovery Projects - Grant ID: DP170102382

    Funder
    Australian Research Council
    Funding Amount
    $385,500.00
    Summary
    Weighing neutrinos in the sky. This project aims to discover how the mass of the neutrino affects the evolution of the universe and to use observations of the universe to measure neutrino masses. The project will build a theoretical framework to describe the nonlinear dynamics of cosmological neutrinos. The intended outcome is a set of computational tools that could predict the signatures of neutrino masses in the sky as precisely as upcoming surveys, to discover neutrino masses in the next 10 y .... Weighing neutrinos in the sky. This project aims to discover how the mass of the neutrino affects the evolution of the universe and to use observations of the universe to measure neutrino masses. The project will build a theoretical framework to describe the nonlinear dynamics of cosmological neutrinos. The intended outcome is a set of computational tools that could predict the signatures of neutrino masses in the sky as precisely as upcoming surveys, to discover neutrino masses in the next 10 years. The project should raise Australia's international profile in basic physical science research and answer fundamental questions about the origin of matter, energy and the universe.
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    Funded Activity

    ARC Centres Of Excellence - Grant ID: CE1101004

    Funder
    Australian Research Council
    Funding Amount
    $25,200,000.00
    Summary
    ARC Centre of Excellence for Particle Physics at the Tera-Scale. The Large Hadron Collider, a gigantic particle accelerator at the CERN laboratory in Europe, has commenced operation. It will discover how particles gain mass, explore the identity of cosmological dark matter, and search for the new laws of physics needed for a satisfactory theory of the structure of matter. the Centre will provide the enhanced capability and institutional coordination and development needed for Australia to make a .... ARC Centre of Excellence for Particle Physics at the Tera-Scale. The Large Hadron Collider, a gigantic particle accelerator at the CERN laboratory in Europe, has commenced operation. It will discover how particles gain mass, explore the identity of cosmological dark matter, and search for the new laws of physics needed for a satisfactory theory of the structure of matter. the Centre will provide the enhanced capability and institutional coordination and development needed for Australia to make a major contribution to this most prestigious international project. It will transform Australia's standing in fundamental physics, provide unsurpassed training, generate many linkages in science and technology, and lead an important public outreach program.
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    Funded Activity

    Discovery Projects - Grant ID: DP110101940

    Funder
    Australian Research Council
    Funding Amount
    $330,000.00
    Summary
    From dark matter to atomic physics. Very little is known about dark matter except that it is present in our Universe in abundance. The project aims to guide the search for dark matter particles (and study related phenomena, for example, baryogenesis). The guiding idea is that these particles interact, albeit weakly, with atoms and hence are able to ionise them, which is a detectable process.
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    Funded Activity

    Discovery Projects - Grant ID: DP140104475

    Funder
    Australian Research Council
    Funding Amount
    $330,000.00
    Summary
    Many-body phenomena in atomic and subatomic physics. The project proposes research in the following areas: search for Dark Matter and Dark Energy using atomic experiments; an enhancement mechanism of baryogenesis based on the new class of gauge theory solutions; new quantum effects in strong gravitational fields and phenomena in non-black hole metric, which reproduce some properties of black holes; new phenomena in strong laser fields, which can help constructing high-frequency lasers; exchange- .... Many-body phenomena in atomic and subatomic physics. The project proposes research in the following areas: search for Dark Matter and Dark Energy using atomic experiments; an enhancement mechanism of baryogenesis based on the new class of gauge theory solutions; new quantum effects in strong gravitational fields and phenomena in non-black hole metric, which reproduce some properties of black holes; new phenomena in strong laser fields, which can help constructing high-frequency lasers; exchange-assisted tunneling; and, chaos-induced boost of electron recombination, charge transfer and weak interactions. The results based on proposed ideas will guide laboratory and astrophysical studies, help verify cosmological models and Unification theories.
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