Dr. Morgan Miller

  • Postdoctoral Fellow
  • Room: A.3.226
  • Telephone: +49 9131 7133347
  • E-mail

I am interested in a wide range of problems involved in the preparation and execution of super resolution microscopy research. I support multiple project with design and instrumentation support. My interests include new technologic developments in fluidics, CFD, charged particle production/control, and vacuum system design.

2021

Sampling Accelerated Micron Scale Ice Particles with a Quadrupole Ion Trap Mass Spectrometer

Anton Belousov, Morgan Miller, Robert Continetti, Stojan Madzunkov, Jurij Simcic, Dragan Nikolic, Frank Maiwald, Sarah Waller, Michael Malaska, et al.

Journal of the American Society for Mass Spectrometry 32 1162-1168 (2021) | Journal

The Enceladus plume is a target of astrobiological interest in planetary science since it may carry signs of extraterrestrial life entrapped in ice grains formed from the subsurface ocean of this moon of Saturn. Fly-by mission concepts have been proposed to perform close investigations of the plume, including detailed in situ measurements of chemical composition with a new generation of mass spectrometer instrumentation. Such a scenario involves high-velocity collisions (typically around 5 km/s or higher) of the instrument with the encountered ice grains. Postimpact processes may include molecular fragmentation, impact ionization, and various subsequent chemical reactions that could alter the original material prior to analysis. In order to simulate Enceladus plume fly through conditions, we are developing an ice grain accelerator and have coupled it to the quadrupole ion trap mass spectrometer (QITMS) developed for flight applications. Our experimental setup enables the creation and acceleration of ice particles with well-defined size, charge, and velocity, which are subsequently directed into the QITMS, where they impact the surface of the mass analyzer and the analysis of postimpact, volatilized molecules takes place. In this work, we performed mass spectral analysis of ice grains of ca. 1.3 μm in diameter, accelerated and impacted at velocities up to 1000 m/s, with an upgrade of the accelerator in progress that will enable velocities up to 5000 m/s. We report the first observations of ice grain impacts measured by the QITMS, which were recorded as brief increases in the abundance of water molecules detected within the instrument.

2024

Waller, S. E.; Miller, M. E. C.; Cable, M. L.; Hodyss, R.; Hofmann, A.; Malaska, M.; Jaramillo-Botero, A.; Burke, S.; Hanold, K.; Continetti, R. E.; Rabinovitch, J.; Tallarida, N.; Belousov, A.; Lambert, J.; Madzunkov, S.; Lunine, J., The Hypervelocity Ice Grain System (HIGS): A new experimental approach to explore biosignature survivability after hypervelocity impact. Paper in preparation [2024]

2020

Miller, M.E.C., Characterizing the Impact Dynamics of Small Particles: The Aerosol Impact Spectrometer. Ph.D. Dissertation, University of California San Diego, La Jolla, CA

Morgan Miller studied Physics (B.S.) at the University of California, San Diego (UCSD) from 2010 to 2014. He received his Ph.D. in the Nanoengineering department at UCSD in 2020, working with Prof. Robert Continetti. His research topic was the development of novel laboratory instrumentation for studying the impact dynamics of sub-micron particles in collaboration with both ASML and the Jet Propulsion Laboratory. After graduating he joined the research groups of Dr. Stojan Madzunkov (Planetary Mass Spectrometry) and Dr. Morgan Cable (Exobiology Extant Life Surveyor) as a postdoctoral researcher. Morgan accepted a position in the Life Science Mass Spectrometry RnD group of Thermo Fisher Scientific in 2021 with the ion source development team. In 2024 he joined the group of Prof. Vahid Sandoghdar at the Max Plank Institute for the Science of Light to work on experimental development in iSCAT microscopy.

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