ARDC Research Link Australia Research Link Australia   BETA Research
Link
Australia
  • ARDC Newsletter Subscribe
  • Contact Us
  • Home
  • About
  • Feedback
  • Explore Collaborations
  • Researcher
  • Funded Activity
  • Organisation
  • Researcher
  • Funded Activity
  • Organisation
  • Researcher
  • Funded Activity
  • Organisation

Need help searching? View our Search Guide.

Advanced Search

Current Selection
Field of Research : Quantum Chemistry
Australian State/Territory : VIC
Research Topic : STRESS REACTIONS
Clear All
Filter by Field of Research
Quantum Chemistry (4)
Catalysis and Mechanisms of Reactions (3)
Organic Chemical Synthesis (2)
Theoretical and Computational Chemistry (2)
Climate Change Processes (1)
Environmental Chemistry (incl. Atmospheric Chemistry) (1)
Functional Materials (1)
Mechanisms Of Reactions (1)
Organic Chemistry (1)
Physical Chemistry (Incl. Structural) (1)
Reaction Kinetics and Dynamics (1)
Filter by Socio-Economic Objective
Atmospheric Composition (incl. Greenhouse Gas Inventory) (1)
Cancer and Related Disorders (1)
Chemical sciences (1)
Expanding Knowledge in the Chemical Sciences (1)
Higher education (1)
Human Pharmaceutical Treatments (e.g. Antibiotics) (1)
Hydrogen Production from Renewable Energy (1)
Solar-Photovoltaic Energy (1)
Filter by Funding Provider
Australian Research Council (4)
Filter by Status
Closed (4)
Filter by Scheme
Discovery Projects (3)
ARC Future Fellowships (1)
Filter by Country
Australia (4)
Filter by Australian State/Territory
VIC (4)
QLD (2)
  • Researchers (9)
  • Funded Activities (4)
  • Organisations (3)
  • Funded Activity

    Discovery Projects - Grant ID: DP0985623

    Funder
    Australian Research Council
    Funding Amount
    $244,591.00
    Summary
    Exploring new roles for phosphorus radicals in health, environment, and technology. Several practical outcomes will arise from this project. Information on processes that contribute to genetic disease and cancer will be derived through studies of the role of phosphorus radicals in DNA damage. Processes that lead to the degradation of natural and synthetic materials in the environment will be explored. Clean reactions will be developed for the fabrication of advanced materials (e.g. pharmaceutica .... Exploring new roles for phosphorus radicals in health, environment, and technology. Several practical outcomes will arise from this project. Information on processes that contribute to genetic disease and cancer will be derived through studies of the role of phosphorus radicals in DNA damage. Processes that lead to the degradation of natural and synthetic materials in the environment will be explored. Clean reactions will be developed for the fabrication of advanced materials (e.g. pharmaceuticals). These innovations will expand Australia's international profile in a growing research area. The project will also address three of Australia's National Research Priorities, contribute to the training of researchers in Free Radical Chemistry, and initiate research collaborations with institutions in France and the USA.
    Read more Read less
    More information
    Funded Activity

    ARC Future Fellowships - Grant ID: FT130100076

    Funder
    Australian Research Council
    Funding Amount
    $717,079.00
    Summary
    Computer-Aided Design of High-Performance Photocatalysts for Solar Hydrogen Production Based on Red Titanium Dioxide. Large-scale generation of energy by solar conversion is critical for future sustainability. This project aims to develop high performance materials to efficiently convert solar energy to hydrogen - a clean fuel. Starting from the newly developed material red titanium dioxide, novel strategies for improved photocatalytic materials will be proposed and evaluated by advanced computa .... Computer-Aided Design of High-Performance Photocatalysts for Solar Hydrogen Production Based on Red Titanium Dioxide. Large-scale generation of energy by solar conversion is critical for future sustainability. This project aims to develop high performance materials to efficiently convert solar energy to hydrogen - a clean fuel. Starting from the newly developed material red titanium dioxide, novel strategies for improved photocatalytic materials will be proposed and evaluated by advanced computational approaches. Key issues for solar-to-hydrogen conversion will be clarified. The materials, knowledge and strategies achieved by this project will dramatically enhance current solar technology and in particular will advance the development of low-cost hydrogen production from water.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP150103131

    Funder
    Australian Research Council
    Funding Amount
    $355,100.00
    Summary
    Chiral Catalysts by Rational Design. This project aims to integrate theory and experiment to design new catalysts for the synthesis of multi-stereocentre-containing molecules. Such molecules offer clear advantages in the area of drug design, owing to their potent and selective binding to biological targets, but a lack of available methods for their preparation currently limits their widespread use. This project will use theory to guide the discovery of new ways to make these molecules. It is exp .... Chiral Catalysts by Rational Design. This project aims to integrate theory and experiment to design new catalysts for the synthesis of multi-stereocentre-containing molecules. Such molecules offer clear advantages in the area of drug design, owing to their potent and selective binding to biological targets, but a lack of available methods for their preparation currently limits their widespread use. This project will use theory to guide the discovery of new ways to make these molecules. It is expected that detailed understanding of the factors that control stereocentre formation will be obtained from accurate theoretical modelling and will be applied to invent new catalysts that deliver improved performance and control over product structure.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP110103889

    Funder
    Australian Research Council
    Funding Amount
    $302,000.00
    Summary
    Transformation of organics in the unpolluted atmosphere. This project will develop the chemistry needed to model the removal of methane and other organic compounds from the unpolluted atmosphere. While the chemistry of urban environments is now understood, there are major shortcomings when describing remote environments, limiting our ability to model the lifetimes of key greenhouse gases and toxins.
    More information

    Showing 1-4 of 4 Funded Activites

    Advanced Search

    Advanced search on the Researcher index.

    Advanced search on the Funded Activity index.

    Advanced search on the Organisation index.

    National Collaborative Research Infrastructure Strategy

    The Australian Research Data Commons is enabled by NCRIS.

    ARDC CONNECT NEWSLETTER

    Subscribe to the ARDC Connect Newsletter to keep up-to-date with the latest digital research news, events, resources, career opportunities and more.

    Subscribe

    Quick Links

    • Home
    • About Research Link Australia
    • Product Roadmap
    • Documentation
    • Disclaimer
    • Contact ARDC

    We acknowledge and celebrate the First Australians on whose traditional lands we live and work, and we pay our respects to Elders past, present and emerging.

    Copyright © ARDC. ACN 633 798 857 Terms and Conditions Privacy Policy Accessibility Statement
    Top
    Quick Feedback