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A Consolidated Grant Proposal for Solar and Planetary Science at the University of Leicester, 2022 - 2025

Lead Research Organisation: University of Leicester
Department Name: Physics and Astronomy

Abstract

We propose a world-class programme of research that focuses on 3 main areas of study concerned with our solar system. The first involves study of the outer environments of the planets where the gas is ionised, such that it not only feels the gravitational pull of the planet, but also interacts strongly with its magnetic and electric fields. In the second area we seek to study the origin and evolution of solar system bodies, through examination of materials from asteroid, chondrite and lunar samples, and through laboratory-based exploration of X-ray fluorescence from Mercury analogues. The third area will employ spectroscopy from the James Webb Space Telescope (JWST) and ground observatories to explore the planetary stratospheres and tropospheres at the ice giants Uranus and Neptune.

Previous work in the first area shows that the outer environments of the planets vary widely, determined by the interaction with the plasma that blows continuously from the Sun on the outside, and the interaction with the planet and its moons on the inside. The solar wind is prone to outbursts that can lead to magnetic storms and bright auroras at Earth, as well as varying strongly over the solar cycle, and with distance from the Sun. Its interaction with the planets then depends on whether the planet is magnetised, has an atmosphere, and has active moons. We will use MESSENGER data to study Mercury close to the Sun, a planet that has a magnetic field but almost no atmosphere; use the constellation of spacecraft at Mars, more distant from the Sun, which has an atmosphere but no strong magnetic field to prevent its erosion by the solar wind; and combine multi-spacecraft and ground instrumentation at Earth, at intermediate distances having both an atmosphere and a magnetic field. We will also study the strongly magnetized giant planets Jupiter and Saturn using data from the Juno mission at Jupiter and Cassini at Saturn, combined with observations of the auroras at ultraviolet wavelengths using the Hubble Space Telescope and at infrared wavelengths using large ground-based telescopes. Auroras are caused by large-scale electric currents flowing between the outer environments and the upper ionized atmospheres, which communicate force between these regions. Overall emphasis will be on the complex physical processes that couple the solar wind on the outside, the magnetic field surrounding the planet (if any), and the planetary atmospheres or surface on the inside.

In the second area, laboratory studies, we will analyse material returned from C-class asteroid Ryugu by the Hayabusa2 mission. We will make complementary analyses on Apollo lunar regolith grains and recent, unique carbonaceous chondrite falls to build a new understanding of space weathering and C-class asteroid parent body processes. This project builds on the leading expertise we have in the microanalysis of planetary materials, through electron microscopy at ePSIC and UoL, and synchrotron-based X-ray spectroscopy. Laboratory work focused on Mercury will centre on the MIXS Ground Reference Facility, a purpose-built system to allow detailed analysis of X-ray fluorescence, induced using an X-ray or electron source, for bespoke surface analogues. This laboratory facility will uniquely allow us to expand our science programme using the MIXS data from the BepiColombo mission, both in relation to the dayside surface composition goals at global and local scales on Mercury, and in terms of the nightside magnetosphere-surface interaction which produces a significant X-ray fluorescence associated with electron bombardment.

The final theme leverages Leicester's leadership of the guaranteed-time giant planets programme on the JWST, exploiting MIRI spectroscopic maps of the Ice Giants Uranus and Neptune, combined with a ground-based observation programme, to understand how stratospheric circulation, photochemistry, and tropospheric meteorology shape the atmospheres of sub-giant-sized worlds.

Publications

10 25 50
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Fletcher L (2023) Saturn's Atmosphere in Northern Summer Revealed by JWST/MIRI in Journal of Geophysical Research: Planets

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Tian R (2024) On the Gravity Wave-Seeded Ionospheric Irregularities in the Martian Ionosphere in Journal of Geophysical Research: Planets

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Harkett J (2024) The Thermal Structure and Composition of Jupiter's Great Red Spot From JWST/MIRI in Journal of Geophysical Research: Planets

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Nitti S (2024) Can XMM-Newton Be Used to Track Compositional Changes in the Solar Wind? in Journal of Geophysical Research: Space Physics

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Milan S (2023) Solar Cycle and Solar Wind Dependence of the Occurrence of Large dB / dt Events at High Latitudes in Journal of Geophysical Research: Space Physics

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Bower G (2022) Occurrence Statistics of Horse Collar Aurora in Journal of Geophysical Research: Space Physics

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Milan S (2022) Influence of Off-Sun-Earth Line Distance on the Accuracy of L1 Solar Wind Monitoring in Journal of Geophysical Research: Space Physics

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Kozlovsky A (2023) Influence of Atmospheric Circulation on Orientation of Auroral Arcs in Journal of Geophysical Research: Space Physics

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Milan S (2024) Occurrence and Causes of Large dB / dt Events and AL Bays in the Pre-Midnight and Dawn Sectors in Journal of Geophysical Research: Space Physics

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Mooney M (2024) Plasma Observations in the Distant Magnetotail During Intervals of Northward IMF in Journal of Geophysical Research: Space Physics

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Stergiopoulou K (2022) A Two-Spacecraft Study of Mars' Induced Magnetosphere's Response to Upstream Conditions in Journal of Geophysical Research: Space Physics

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Bower G (2022) Transpolar Arcs: Seasonal Dependence Identified by an Automated Detection Algorithm in Journal of Geophysical Research: Space Physics

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Fleetham A (2023) Solar Wind Control of Hemispherically-Integrated Field-Aligned Currents at Earth in Journal of Geophysical Research: Space Physics

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Lao C (2024) On the Association of Substorm Identification Methods in Journal of Geophysical Research: Space Physics

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Edberg N (2024) Extent of the Magnetotail of Venus From the Solar Orbiter, Parker Solar Probe and BepiColombo Flybys in Journal of Geophysical Research: Space Physics

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Fogg A (2023) Why Are Some Solar Wind Pressure Pulses Followed by Geomagnetic Storms? in Journal of Geophysical Research: Space Physics

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Grocott A (2023) SuperDARN Observations of the Two Component Model of Ionospheric Convection in Journal of Geophysical Research: Space Physics

 
Title JWST NIRCam data (unprojected) 
Description Unprojected NIRCam images of Jupiter's northern H3+ auroral emission. These observations were obtained as part of JWST program 4566 on 25 December 2023, using the long wavelength channel of NIRCam with the CLEAR pupil aperture stop and F335M filter. The data are presented in units of radiance in µW m-2 sr-1, and have been reduced as described in Nichols et al. (2024). The data are stored in the first extension of each FITS file, in arrays of shape (n_integrations, nx, ny), where n_integrations is the number of integrations stored in this file. The observation almanac information is stored in the header. 
Type Of Material Database/Collection of data 
Year Produced 2024 
Provided To Others? Yes  
URL https://figshare.le.ac.uk/articles/dataset/JWST_NIRCam_data_unprojected_/26893192/1
 
Title JWST NIRCam data (unprojected) 
Description Unprojected NIRCam images of Jupiter's northern H3+ auroral emission. These observations were obtained as part of JWST program 4566 on 25 December 2023, using the long wavelength channel of NIRCam with the CLEAR pupil aperture stop and F335M filter. The data are presented in units of radiance in µW m-2 sr-1, and have been reduced as described in Nichols et al. (2024). The data are stored in the first extension of each FITS file, in arrays of shape (n_integrations, nx, ny), where n_integrations is the number of integrations stored in this file. The observation almanac information is stored in the header. 
Type Of Material Database/Collection of data 
Year Produced 2024 
Provided To Others? Yes  
URL https://figshare.le.ac.uk/articles/dataset/JWST_NIRCam_data_unprojected_/26893192