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
Research Topic : ELECTRO-PHYSIOLOGY
Socio-Economic Objective : Scientific Instruments
Australian State/Territory : SA
Clear All
Filter by Field of Research
Photonics and Electro-Optical Engineering (excl. Communications) (2)
Electrical and Electronic Engineering (1)
Electronics sensors and digital hardware (1)
Lasers and Quantum Electronics (1)
Nonlinear Optics and Spectroscopy (1)
Optical Physics (1)
Photonic and electro-optical devices sensors and systems (excl. communications) (1)
Photonics optoelectronics and optical communications (1)
Photonics, Optoelectronics and Optical Communications (1)
Filter by Socio-Economic Objective
Scientific Instruments (3)
Expanding Knowledge In Engineering (1)
Expanding Knowledge In the Physical Sciences (1)
Industrial Instruments (1)
National Security (1)
Primary Mining and Extraction of Mineral Resources not elsewhere classified (1)
Filter by Funding Provider
Australian Research Council (3)
Filter by Status
Active (2)
Closed (1)
Filter by Scheme
Discovery Early Career Researcher Award (2)
Linkage Projects (1)
Filter by Country
Australia (3)
Filter by Australian State/Territory
SA (3)
NSW (1)
VIC (1)
  • Researchers (10)
  • Funded Activities (3)
  • Organisations (3)
  • Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE210101904

    Funder
    Australian Research Council
    Funding Amount
    $385,322.00
    Summary
    Next-Generation LIDAR with Novel Microresonator Frequency Combs. This project aims to develop the science that would enable a new low-cost laser radar (LIDAR) for imaging the world around us. LIDAR has applications in facial recognition, forestry and autonomous vehicles – our new device will uniquely offer the ability to work underwater thereby opening up new possibilities for maritime environmental and vehicle monitoring. Our approach exploits a new form of optical pulse propagation in precise .... Next-Generation LIDAR with Novel Microresonator Frequency Combs. This project aims to develop the science that would enable a new low-cost laser radar (LIDAR) for imaging the world around us. LIDAR has applications in facial recognition, forestry and autonomous vehicles – our new device will uniquely offer the ability to work underwater thereby opening up new possibilities for maritime environmental and vehicle monitoring. Our approach exploits a new form of optical pulse propagation in precisely shaped crystals to generate bespoke laser pulses that enable high-speed and precise ranging to targets of interest. The science behind these new types of optical pulses offers the ability for Australia to lead a new scientifically and industrially important field.
    Read more Read less
    More information
    Funded Activity

    Linkage Projects - Grant ID: LP130101133

    Funder
    Australian Research Council
    Funding Amount
    $360,000.00
    Summary
    Compact and versatile chip lasers for three-dimensional mine surveying. This project will bring together a world leading mine survey company, The University of Adelaide and Macquarie University researchers, to develop an 'eye-safe' micro laser for high resolution three-dimensional laser-mapping. The recently developed and patented 'chip' laser will allow the realisation of a compact, enhanced range laser-radar with unmatched resolution.
    More information
    Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE230100964

    Funder
    Australian Research Council
    Funding Amount
    $456,354.00
    Summary
    Precision Rulers for the Visible - Chip Scale Optical Frequency Combs. This project aims to create a photonic chip technology that generates hundreds of coherent laser lines in the visible spectrum from a single chip for accurate sensing, imaging unknown objects and measuring gas emissions. The project expects to introduce this new capability in the current photonic chip technology, which currently only operates with infrared light. The expected outcomes are inexpensive, stable and energy-effici .... Precision Rulers for the Visible - Chip Scale Optical Frequency Combs. This project aims to create a photonic chip technology that generates hundreds of coherent laser lines in the visible spectrum from a single chip for accurate sensing, imaging unknown objects and measuring gas emissions. The project expects to introduce this new capability in the current photonic chip technology, which currently only operates with infrared light. The expected outcomes are inexpensive, stable and energy-efficient devices the size of a fingernail that will enable measurements with unprecedented accuracies. This should allow these devices to be mounted on drones, satellites, and robots, making them attractive for defence, information security, imaging, autonomous vehicle, and sensing applications.
    Read more Read less
    More information

    Showing 1-3 of 3 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