Adam Johnson
- BEng (University of Victoria, 2021)
Topic
Beyond the Speckles: New Horizons in High-Contrast Imaging for Exoplanet Science
Department of Mechanical Engineering
Date & location
- Tuesday, August 5, 2025
- 10:00 A.M.
- Virtual Defence
Examining Committee
Supervisory Committee
- Dr. Colin Bradley, Department of Mechanical Engineering, University of Victoria (Co-Supervisor)
- Dr. Christian Marois, Department of Physics and Astronomy, UVic (Co-Supervisor)
- Dr. Peter Wild, Department of Mechanical Engineering, UVic (Member)
External Examiner
- Dr. Shin Oya, Advanced Technology Department, National Astronomical Observatory of Japan
Chair of Oral Examination
- Dr. Steve Perlman, Department of Biology, UVic
Abstract
Direct imaging of exoplanets offers a uniquely powerful way of characterizing planetary atmospheres, surface conditions, and potential biological markers beyond our solar system. However, the extreme contrast and small angular separations involved present significant observational challenges that demand continual innovation in instrumentation and observing strategies. This dissertation addresses these challenges through a coordinated set of developments in instrumentation for focal plane wave-front sensing, post-processing, calibration systems, and atmospheric tomography.
The first contribution presents the design, implementation, and deployment of the SPIDERS instrument for the Subaru Telescope. This compact, modular plat-form integrates the fast atmospheric self-coherent camera technique (FAST), a Lyot-based low-order wavefront sensor (LLOWFS), and an imaging Fourier transform spec-trometer (IFTS) to validate advanced wavefront control, spectral retrieval, and post-processing techniques. A custom ultra-low speed optical chopper (ULSOC) enables stable fringe modulation at sub hertz frequencies, supporting focal plane wave front sensing and coherent differential imaging (CDI). A dedicated motion control system further supports full-field broadband spectral acquisition through the IFTS.
The second major contribution focuses on the CAL 2.0 upgrade for the Gemini Planet Imager (GPI). The system incorporates adapted versions of the focal plane mask (FPM) wheel and polarization modulator (PolMod) from the original CAL architecture, along with a facility-class ULSOC, enabling real-time focal plane wave front correction and enhanced post-processing. Informed by lessons from SPIDERS, these upgrades are expected to improve contrast by up to two orders of magnitude beyond current state-of-the-art systems for bright stars at small angular separations.
Finally, the dissertation introduces STARLITE, a mission concept for satellite-aided atmospheric tomography. STARLITE proposes a constellation of small satellites carrying laser beacons in highly elliptical orbits, periodically aligning with ground-based observatories to enable tomographic reconstruction of atmospheric turbulence. A feasibility study is presented, evaluating orbital mechanics, optical performance, and reconstruction fidelity, demonstrating STARLITE’s potential to support diffraction-limited, high-contrast imaging for small separation targets.
Together, these contributions advance the capabilities of direct imaging systems and establish a technical foundation for future instruments to probe terrestrial exo-planets and explore their potential for life with unprecedented precision.