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 : Materials Engineering
Research Topic : density
Clear All
Filter by Field of Research
Condensed Matter Modelling and Density Functional Theory (4)
Materials Engineering (4)
Functional Materials (3)
Catalysis and Mechanisms of Reactions (1)
Electronic and Magnetic Properties of Condensed Matter; Superconductivity (1)
Glass (1)
Nanofabrication, Growth and Self Assembly (1)
Photonics and Electro-Optical Engineering (excl. Communications) (1)
Filter by Socio-Economic Objective
Expanding Knowledge in the Physical Sciences (3)
Expanding Knowledge in Technology (2)
Ceramics, Glass and Industrial Mineral Products not elsewhere classified (1)
Energy Transformation not elsewhere classified (1)
Environmentally Sustainable Energy Activities not elsewhere classified (1)
Expanding Knowledge in Engineering (1)
Expanding Knowledge in the Chemical Sciences (1)
Hydrogen Production from Renewable Energy (1)
Filter by Funding Provider
Australian Research Council (4)
Filter by Status
Closed (3)
Active (1)
Filter by Scheme
Discovery Projects (4)
Filter by Country
Australia (4)
Filter by Australian State/Territory
NSW (2)
ACT (1)
QLD (1)
VIC (1)
  • Researchers (27)
  • Funded Activities (4)
  • Organisations (23)
  • Active Funded Activity

    Discovery Projects - Grant ID: DP190101607

    Funder
    Australian Research Council
    Funding Amount
    $270,000.00
    Summary
    Cost-efficient 2D heterostructures for solar overall water splitting. This project aims to develop novel processes to enable water splitting to generate hydrogen and oxygen under sunlight using cost-efficient 2D van der Waals heterostructures. Enhanced optical absorption and reduced charge transfer distance across the interface are expected to improve the photocatalytic activity. Experimental design and theoretical simulations will be combined to modulate the materials and achieve optimum photoc .... Cost-efficient 2D heterostructures for solar overall water splitting. This project aims to develop novel processes to enable water splitting to generate hydrogen and oxygen under sunlight using cost-efficient 2D van der Waals heterostructures. Enhanced optical absorption and reduced charge transfer distance across the interface are expected to improve the photocatalytic activity. Experimental design and theoretical simulations will be combined to modulate the materials and achieve optimum photocatalytic performances. Expected outcomes of this project include expanded chemistry knowledge and techniques in materials design and synthesis, photophysics and photocatalysis mechanism and solar energy conversion. This will provide significant benefits to clean energy and environmental protections.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP110102753

    Funder
    Australian Research Council
    Funding Amount
    $210,000.00
    Summary
    Understanding and optimising the microstructure of Germanium-Arsenic-Selenium glasses for superior device performance. The project will seek to use a combined theoretical and experimental approach to develop 'state of the art' optical glass materials for use in integrated nonlinear optical components. Such materials could be used as optical waveguides in broadband communication systems and offer the possibility of significant improvement in telecommunication performance.
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP170102550

    Funder
    Australian Research Council
    Funding Amount
    $400,500.00
    Summary
    Engineered control of polarisation rotation in ferroelectric bilayers. This project aims to develop interface engineered nanoscale ferroelectric thin films with functional properties suitable for integration. Bulk ferroelectrics form the core of traditional stand-alone electromechanical devices such as sensors, actuators and ultrasonic devices. Future applications need to be integrated into thin film form on semiconductor wafers, but the attachment to the wafer induces a mechanical constraint, w .... Engineered control of polarisation rotation in ferroelectric bilayers. This project aims to develop interface engineered nanoscale ferroelectric thin films with functional properties suitable for integration. Bulk ferroelectrics form the core of traditional stand-alone electromechanical devices such as sensors, actuators and ultrasonic devices. Future applications need to be integrated into thin film form on semiconductor wafers, but the attachment to the wafer induces a mechanical constraint, which dramatically suppresses the electromechanical response. This project aims to solve this problem by "polarisation rotation", achieved by layered stacking of thin film ferroelectrics. Engineered control of ferroelectric polarization rotation could be the pathway to modern electromechanical devices.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP140102581

    Funder
    Australian Research Council
    Funding Amount
    $520,000.00
    Summary
    Design and exploration of novel p-block materials for visible light photocatalysis. This project aims to design and explore novel visible light p-block photocatalysts through in depth surface studies of materials at an atomic level. A new strategy of band structure engineering and in-situ investigation of atomic-level photocatalytic dynamics will be the key elements in this research which is expected to yield several novel visible light photocatalysts. The outcome of the project will be the unde .... Design and exploration of novel p-block materials for visible light photocatalysis. This project aims to design and explore novel visible light p-block photocatalysts through in depth surface studies of materials at an atomic level. A new strategy of band structure engineering and in-situ investigation of atomic-level photocatalytic dynamics will be the key elements in this research which is expected to yield several novel visible light photocatalysts. The outcome of the project will be the understanding of processes and mechanisms underlying the photocatalysis and building the foundation of usable, stable, and durable visible-light photocatalytic applications.
    Read more Read less
    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