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
Socio-Economic Objective : Physical sciences
Research Topic : Protein characterisation
Australian State/Territory : ACT
Clear All
Filter by Field of Research
Nanotechnology (3)
Protein Targeting And Signal Transduction (3)
Biophysics (2)
Nanoscale Characterisation (2)
Biochemistry and Cell Biology (1)
Characterisation Of Macromolecules (1)
Colloid And Surface Chemistry (1)
Condensed Matter Characterisation Technique Development (1)
Condensed Matter Physics—Other (1)
Macromolecular and Materials Chemistry (1)
Membrane Biology (1)
Nanomaterials (1)
Nanophotonics (1)
Other Physical Sciences (1)
Photonics, Optoelectronics and Optical Communications (1)
Physical Chemistry (Incl. Structural) (1)
Quantum Chemistry (1)
Structural Chemistry (1)
Filter by Socio-Economic Objective
Physical sciences (6)
Chemical sciences (2)
Biological sciences (1)
Ceramics (1)
Earth sciences (1)
Infectious diseases (1)
Inherited diseases (incl. gene therapy) (1)
Integrated circuits and devices (1)
Nervous system and disorders (1)
Polymeric materials (e.g. paints) (1)
Solar-photoelectric (1)
Treatments (e.g. chemicals, antibiotics) (1)
Filter by Funding Provider
Australian Research Council (6)
Filter by Status
Closed (6)
Filter by Scheme
Discovery Projects (3)
Linkage Infrastructure, Equipment and Facilities (3)
Filter by Country
Australia (6)
Filter by Australian State/Territory
ACT (6)
NSW (3)
VIC (3)
WA (1)
  • Researchers (33)
  • Funded Activities (6)
  • Organisations (3)
  • Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE100100121

    Funder
    Australian Research Council
    Funding Amount
    $1,000,000.00
    Summary
    An analytical transmission electron microscope for the investigation of functional materials, earth processes and novel condensed matter. Sustainablity depends on the delivery of clean energy, pristine water and air, and the manufacture of consumer products with small environmental footprints. Modelling long-term impacts requires an understanding of the hydro-geological cycles. The technologies are well known—efficient electronics, fuel cells, lightweight composites, and so on—but delivery is .... An analytical transmission electron microscope for the investigation of functional materials, earth processes and novel condensed matter. Sustainablity depends on the delivery of clean energy, pristine water and air, and the manufacture of consumer products with small environmental footprints. Modelling long-term impacts requires an understanding of the hydro-geological cycles. The technologies are well known—efficient electronics, fuel cells, lightweight composites, and so on—but delivery is not straightforward. It is clear, however, that novel materials manipulated at fine scales will be key. Transmission electron microscopy (TEM) guides the development of sustainable technologies. The new TEM facility at ANU will accelerate current studies, by enhancing the materials research portfolio, and extending national and international collaborations in materials, geological and earth sciences.
    Read more Read less
    More information
    Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE100100048

    Funder
    Australian Research Council
    Funding Amount
    $340,000.00
    Summary
    Nanoscale optical microscopy facility. The optical microscope has enabled us to see micro-objects, leading to revolutionary discoveries in medicine and natural sciences. However, the smallest object resolved by a microscope is limited by the wavelength of light. To see nanoscale objects smaller than the wavelength, a new tool for nano-imaging is needed. This project will establish a nanoscale optical microscopy facility that will reveal the topology and true colours of the nano-objects. Such inf .... Nanoscale optical microscopy facility. The optical microscope has enabled us to see micro-objects, leading to revolutionary discoveries in medicine and natural sciences. However, the smallest object resolved by a microscope is limited by the wavelength of light. To see nanoscale objects smaller than the wavelength, a new tool for nano-imaging is needed. This project will establish a nanoscale optical microscopy facility that will reveal the topology and true colours of the nano-objects. Such information, achieved through spectroscopic analysis of the light emitted or scattered at the nanoscale, will uncover some of the most fundamental aspects of the nanoworld, leading to cutting-edge scientific discoveries and important industrial applications in photonics and solar energy.
    Read more Read less
    More information
    Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE0882576

    Funder
    Australian Research Council
    Funding Amount
    $588,000.00
    Summary
    Polymer Characterization Facility (PCF). Future development of macromolecular and biotechnologies have the potential to revolutionize everyday life. Current applications include plastics for engineering, diagnostic devices for biochemical analysis, polymer therapeutics for drug delivery and prosthesis with specific functions. The proposed facility will provide the analytical tools required to probe and develop advanced materials with application in medicine, agriculture, composites, cosmetics, .... Polymer Characterization Facility (PCF). Future development of macromolecular and biotechnologies have the potential to revolutionize everyday life. Current applications include plastics for engineering, diagnostic devices for biochemical analysis, polymer therapeutics for drug delivery and prosthesis with specific functions. The proposed facility will provide the analytical tools required to probe and develop advanced materials with application in medicine, agriculture, composites, cosmetics, communications and electronics.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP0451202

    Funder
    Australian Research Council
    Funding Amount
    $186,000.00
    Summary
    Hierarchical modeling of protein interactions. Protein interactions play a central role in function and structural organization of cells. Their elucidation is essential for a better understanding of many cellular processes from signal transduction to enzyme inhibition. The aim of this project is to utilize the unprecedented powers of current supercomputers in developing a hierarchical model of protein interactions. The method combines Brownian dynamics at large distances and long time scales .... Hierarchical modeling of protein interactions. Protein interactions play a central role in function and structural organization of cells. Their elucidation is essential for a better understanding of many cellular processes from signal transduction to enzyme inhibition. The aim of this project is to utilize the unprecedented powers of current supercomputers in developing a hierarchical model of protein interactions. The method combines Brownian dynamics at large distances and long time scales with molecular dynamics at small distances and shorter times. Applications to both membrane proteins (blocking of ion channels by toxins and drugs) and globular proteins (ligand binding to receptors and protein association) will be considered.
    Read more Read less
    More information
    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.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP0208134

    Funder
    Australian Research Council
    Funding Amount
    $180,000.00
    Summary
    Surface Forces in Aqueous Electrolytes. This project studies the force between two nearby colloidal particles or macromolecules in aqueous electrolyte solutions. Although such forces control the approach and binding of particles in electrolytes and hence have large practical significance they are poorly known. In recent work I established a rigorous scheme for calculation of the electrostatic contribution to the force and proved its feasibility. In order to realise practical applications, such a .... Surface Forces in Aqueous Electrolytes. This project studies the force between two nearby colloidal particles or macromolecules in aqueous electrolyte solutions. Although such forces control the approach and binding of particles in electrolytes and hence have large practical significance they are poorly known. In recent work I established a rigorous scheme for calculation of the electrostatic contribution to the force and proved its feasibility. In order to realise practical applications, such as in drug design, we must know the mean force between an ion and a surface or functional surface group. Here I propose to perform the required simulations and explore the analytical simplifications.
    Read more Read less
    More information

    Showing 1-6 of 6 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