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Dr Alexander Stilgoe
Dr

Alexander Stilgoe

Email: 
Phone: 
+61 7 334 69935

Overview

Availability

Dr Alexander Stilgoe is:
Available for supervision

Qualifications

  • Bachelor (Honours) of Science (Advanced), The University of Queensland
  • Doctor of Philosophy, The University of Queensland

Works

Search Professor Alexander Stilgoe’s works on UQ eSpace

88 works between 2007 and 2025

21 - 40 of 88 works

2021

Journal Article

Ultrafast viscosity measurement with ballistic optical tweezers

Madsen, Lars S., Waleed, Muhammad, Casacio, Catxere A., Terrasson, Alex, Stilgoe, Alexander B., Taylor, Michael A. and Bowen, Warwick P. (2021). Ultrafast viscosity measurement with ballistic optical tweezers. Nature Photonics, 15 (5), 386-392. doi: 10.1038/s41566-021-00798-8

Ultrafast viscosity measurement with ballistic optical tweezers

2021

Journal Article

Dynamic high-resolution optical trapping of ultracold atoms

Gauthier, Guillaume, Bell, Thomas A., Stilgoe, Alexander B., Baker, Mark, Rubinsztein-Dunlop, Halina and Neely, Tyler W. (2021). Dynamic high-resolution optical trapping of ultracold atoms. Advances in Atomic, Molecular and Optical Physics, 70, 1-101. doi: 10.1016/bs.aamop.2021.04.001

Dynamic high-resolution optical trapping of ultracold atoms

2020

Journal Article

Strong transient flows generated by thermoplasmonic bubble nucleation

Jones, Steven, Andrén, Daniel, Antosiewicz, Tomasz J., Stilgoe, Alexander, Rubinsztein-Dunlop, Halina and Käll, Mikael (2020). Strong transient flows generated by thermoplasmonic bubble nucleation. ACS Nano, 14 (12), 17468-17475. doi: 10.1021/acsnano.0c07763

Strong transient flows generated by thermoplasmonic bubble nucleation

2020

Journal Article

Optical force measurements illuminate dynamics of Escherichia coli in viscous media

Armstrong, Declan J., Nieminen, Timo A., Favre-Bulle, Itia, Stilgoe, Alexander B., Lenton, Isaac C. D., Schembri, Mark A. and Rubinsztein-Dunlop, Halina (2020). Optical force measurements illuminate dynamics of Escherichia coli in viscous media. Frontiers in Physics, 8 575732. doi: 10.3389/fphy.2020.575732

Optical force measurements illuminate dynamics of Escherichia coli in viscous media

2020

Journal Article

Machine learning reveals complex behaviours in optically trapped particles

Lenton, Isaac Christopher David, Volpe, Giovanni, Stilgoe, Alexander, Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2020). Machine learning reveals complex behaviours in optically trapped particles. Machine Learning: Science and Technology, 1 (4) abae76, 045009. doi: 10.1088/2632-2153/abae76

Machine learning reveals complex behaviours in optically trapped particles

2020

Journal Article

OTSLM toolbox for structured light methods

Lenton, Isaac C.D., Stilgoe, Alexander B., Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2020). OTSLM toolbox for structured light methods. Computer Physics Communications, 253 107199. doi: 10.1016/j.cpc.2020.107199

OTSLM toolbox for structured light methods

2020

Conference Publication

Direct Force Measurement with Reflective and Conductive Particles in Optical Tweezers

Lenton, Isaac C., Nieminen, Timo A., Reece, Peter J., Stilgoe, Alexander B. and Rubinsztein-Dunlop, Halina (2020). Direct Force Measurement with Reflective and Conductive Particles in Optical Tweezers. 14th Pacific Rim Conference on Lasers and Electro-Optics (CLEO PR 2020), Sydney, NSW Australia, 3–5 August 2020. Washington, DC United States: Optical Society of America. doi: 10.1364/CLEOPR.2020.C12E_1

Direct Force Measurement with Reflective and Conductive Particles in Optical Tweezers

2020

Journal Article

Swimming force and behavior of optically trapped micro-organisms

Armstrong, Declan J., Nieminen, Timo A., Stilgoe, Alexander B., Kashchuk, Anatolii V., Lenton, Isaac C. D. and Rubinsztein-Dunlop, Halina (2020). Swimming force and behavior of optically trapped micro-organisms. Optica, 7 (8), 989-994. doi: 10.1364/optica.394232

Swimming force and behavior of optically trapped micro-organisms

2020

Conference Publication

Understanding particle trajectories by mapping optical force vortices

Lenton, Isaac C. D., Stilgoe, Alex B., Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2020). Understanding particle trajectories by mapping optical force vortices. Complex Light and Optical Forces XIV, San Francisco, CA, United States, 1-6 February 2020. Bellingham, WA, United States: SPIE. doi: 10.1117/12.2550418

Understanding particle trajectories by mapping optical force vortices

2019

Journal Article

Orientation of swimming cells with annular beam optical tweezers

Lenton, Isaac C. D., Armstrong, Declan J., Stilgoe, Alexander B., Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2019). Orientation of swimming cells with annular beam optical tweezers. Optics Communications, 459 124864, 124864. doi: 10.1016/j.optcom.2019.124864

Orientation of swimming cells with annular beam optical tweezers

2019

Journal Article

Optical-trapping of particles in air using parabolic reflectors and a hollow laser beam

Pan, Yong-Le, Kalume, Aimable, Lenton, Isaac C. D., Nieminen, Timo A., Stilgoe, Alex B., Rubinsztein-Dunlop, Halina, Beresnev, Leonid A., Wang, Chuji and Santarpia, Joshua L. (2019). Optical-trapping of particles in air using parabolic reflectors and a hollow laser beam. Optics Express, 27 (23), 33061-33069. doi: 10.1364/oe.27.033061

Optical-trapping of particles in air using parabolic reflectors and a hollow laser beam

2019

Journal Article

Optical trapping in vivo: theory, practice, and applications

Favre-Bulle, Itia A., Stilgoe, Alexander B., Scott, Ethan K. and Rubinsztein-Dunlop, Halina (2019). Optical trapping in vivo: theory, practice, and applications. Nanophotonics, 8 (6), 1023-1040. doi: 10.1515/nanoph-2019-0055

Optical trapping in vivo: theory, practice, and applications

2019

Journal Article

Machine learning wall effects of eccentric spheres for convenient computation

Gibson, Lachlan J., Zhang, Shu, Stilgoe, Alexander B., Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2019). Machine learning wall effects of eccentric spheres for convenient computation. Physical Review E, 99 (4) 043304, 043304. doi: 10.1103/PhysRevE.99.043304

Machine learning wall effects of eccentric spheres for convenient computation

2019

Journal Article

High-speed transverse and axial optical force measurements using amplitude filter masks

Kashchuk, Anatolii V., Nieminen, Timo A., Rubinsztein-Dunlop, Halina and Stilgoe, Alexander B. (2019). High-speed transverse and axial optical force measurements using amplitude filter masks. Optics Express, 27 (7), 10034-10049. doi: 10.1364/OE.27.010034

High-speed transverse and axial optical force measurements using amplitude filter masks

2019

Journal Article

Measuring local properties inside a cell-mimicking structure using rotating optical tweezers

Zhang, Shu, Gibson, Lachlan J., Stilgoe, Alexander B., Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2019). Measuring local properties inside a cell-mimicking structure using rotating optical tweezers. Journal of Biophotonics, 12 (7) e201900022, e201900022. doi: 10.1002/jbio.201900022

Measuring local properties inside a cell-mimicking structure using rotating optical tweezers

2019

Journal Article

Microscope images of strongly scattering objects via vectorial transfer matrices: modeling and an experimental verification

Stilgoe, Alexander B., Loke, Vincent L. Y., Kashchuk, Anatolii V., Nieminen, Timo A. and Rubinsztein-Dunlop, Halina (2019). Microscope images of strongly scattering objects via vectorial transfer matrices: modeling and an experimental verification. Physical Review a, 99 (1) 013818. doi: 10.1103/PhysRevA.99.013818

Microscope images of strongly scattering objects via vectorial transfer matrices: modeling and an experimental verification

2018

Journal Article

Calibration of force detection for arbitrarily shaped particles in optical tweezers

Bui, Ann A. M., Kashchuk, Anatolii V., Balanant, Marie Anne, Nieminen, Timo A., Rubinsztein-Dunlop, Halina and Stilgoe, Alexander B. (2018). Calibration of force detection for arbitrarily shaped particles in optical tweezers. Scientific Reports, 8 (1) 10798, 10798. doi: 10.1038/s41598-018-28876-y

Calibration of force detection for arbitrarily shaped particles in optical tweezers

2018

Journal Article

Optical tweezers bring micromachines to biology

Favre-Bulle, I. A., Zhang, S., Kashchuk, A. V., Lenton, I. C.D., Gibson, L. J., Stilgoe, A. B., Nieminen, T. A. and Rubinsztein-Dunlop, H. (2018). Optical tweezers bring micromachines to biology. Optics and Photonics News, 29 (4), 40-47. doi: 10.1364/opn.29.4.000040

Optical tweezers bring micromachines to biology

2018

Conference Publication

Measuring the motility and drag forces acting on biological particles using optical tweezers

Lenton, Isaac C. D., Armstrong, Declan, Calvert-Lane, Jackson, Nieminen, Timo A., Stilgoe, Alexander B. and Rubinsztein-Dunlop, Halina (2018). Measuring the motility and drag forces acting on biological particles using optical tweezers. Optical Trapping and Optical Micromanipulation XV 2018, San Diego, CA, United States, 19-23 August 2018. Bellingham, WA, United States: SPIE. doi: 10.1117/12.2324117

Measuring the motility and drag forces acting on biological particles using optical tweezers

2018

Conference Publication

Optical tweezers toolbox: full dynamics simulations for particles of all sizes

Lenton, Isaac C. D., Bui, Ann A. M., Nieminen, Timo A., Stilgoe, Alexander B. and Rubinsztein-Dunlop, Halina (2018). Optical tweezers toolbox: full dynamics simulations for particles of all sizes. Optical Trapping and Optical Micromanipulation XV 2018, San Diego, CA, United States, 19-23 August 2018. Bellingham, WA, United States: SPIE. doi: 10.1117/12.2324120

Optical tweezers toolbox: full dynamics simulations for particles of all sizes

Funding

Current funding

  • 2023 - 2026
    Cell fluid interaction: inside and outside cells
    ARC Discovery Projects
    Open grant

Supervision

Availability

Dr Alexander Stilgoe is:
Available for supervision

Before you email them, read our advice on how to contact a supervisor.

Available projects

  • Control and measurement of biological and optical active matter

    Swarms of particles can extract energy from their environment. Any system that utilises energy in the environment for locomotion is active matter. One of the key reasons for this beahviour is for the foraging of resources. Active matter occurs throughout nature, ranging from single molecules to entire organisms. More recently, we have begun experiments using optically active materials. We want to understand the interactions of both synthetic and natural active matter systems.

    There is a suite of honours projects in this topic area ranging from multiple particle tracking and behaviour characterisation using machine-learning techniques to designing active matter experiments to understand the complex interactions between active matter and their environment. The project may be tailored to the strengths and interests of the candidate as we find active matter a fascinating research area with plenty to discover.

    This project can be tailored to suit honours, masters, and PhD level candidates.

    Co-supervision with Halina Rubinstein-Dunlop.

  • 3D Holographic microscope

    Light-based microscopes have been at the forefront scientific research in the hard and soft physical sciences. They are limited by wave diffraction to resolutions of approximately half the wavelength of light used to image the sample. The image of this diffraction will change depending on the angle and wavelength of light used to illuminate the sample. Hence, these images contain complementary information about refractive index variation in 3D space. In this project we will advanced the field of microscopy by utilizing big data and machine learning to learn a filtering and transformation of data in a microscope system to yield synthetic images that accurately show the 3D localisation of refractive index variation within of complex environments. This will generate an unprecedented view of light-based microscope samples below the diffraction limit and into the intermediate scattering regime.

    This project can be tailored to suit honours, masters, and PhD level candidates.

    Co-supervision with Halina Rubinstein-Dunlop.

  • Manipulation of matter using vectoral shaping of light

    Light can be used to trap and control matter on the microscale. One of the famous applications of optical manipulation are Optical Tweezers. Optical tweezers enable trapping and manipulation of matter using highly focused laser light. This project will utilise modern diffractive optics tehcniques and algoirthmic optimisation to improve control and mesurement of light--matter interactions using optical tweezers and enable a new generation of precision measurements for use within soft-matter and biological systems.

    This project can be tailored to suit honours, masters, and PhD level candidates.

    Co-supervision with Halina Rubinstein-Dunlop.

  • 3D Holographic microscope

    Light-based microscopes have been at the forefront scientific research in the hard and soft physical sciences. They are limited by wave diffraction to resolutions of approximately half the wavelength of light used to image the sample. The image of this diffraction will change depending on the angle and wavelength of light used to illuminate the sample. Hence, these images contain complementary information about refractive index variation in 3D space. In this project we will advanced the field of microscopy by utilizing big data and machine learning to learn a filtering and transformation of data in a microscope system to yield synthetic images that accurately show the 3D localisation of refractive index variation within of complex environments. This will generate an unprecedented view of light-based microscope samples below the diffraction limit and into the intermediate scattering regime.

    This project can be tailored to suit honours, masters, and PhD level candidates.

    Co-supervision with Halina Rubinstein-Dunlop.

  • Manipulation of matter using vectoral shaping of light

    Light can be used to trap and control matter on the microscale. One of the famous applications of optical manipulation are Optical Tweezers. Optical tweezers enable trapping and manipulation of matter using highly focused laser light. This project will utilise modern diffractive optics tehcniques and algoirthmic optimisation to improve control and mesurement of light--matter interactions using optical tweezers and enable a new generation of precision measurements for use within soft-matter and biological systems.

    This project can be tailored to suit honours, masters, and PhD level candidates.

    Co-supervision with Halina Rubinstein-Dunlop.

  • Control and measurement of biological and optical active matter

    Swarms of particles can extract energy from their environment. Any system that utilises energy in the environment for locomotion is active matter. One of the key reasons for this beahviour is for the foraging of resources. Active matter occurs throughout nature, ranging from single molecules to entire organisms. More recently, we have begun experiments using optically active materials. We want to understand the interactions of both synthetic and natural active matter systems.

    There is a suite of honours projects in this topic area ranging from multiple particle tracking and behaviour characterisation using machine-learning techniques to designing active matter experiments to understand the complex interactions between active matter and their environment. The project may be tailored to the strengths and interests of the candidate as we find active matter a fascinating research area with plenty to discover.

    This project can be tailored to suit honours, masters, and PhD level candidates.

    Co-supervision with Halina Rubinstein-Dunlop.

Supervision history

Current supervision

Completed supervision

Media

Enquiries

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