The Sun’s outer atmosphere erupts in flares and ejects magnetised plasma that can knock out power grids and disrupt satellites, yet physicists still cannot fully explain how these events work. This project tackles fundamental gaps in understanding how magnetised plasmas behave across the universe—from the Sun’s surface to distant pulsars and the early cosmos. The researchers will combine telescope observations with computer simulations to answer specific questions: how solar flares accelerate high-energy particles, how the Sun stores and releases magnetic energy, and how pulsars generate their beams of radiation. This is primarily curiosity-driven fundamental science. There is no immediate practical application. However, a better grasp of solar plasma physics could improve forecasts of space weather events that threaten satellite communications, aviation electronics, and electrical grids on Earth. Understanding pulsar emission mechanisms may also sharpen the use of these cosmic clocks for navigation and tests of gravity. Past fundamental plasma research has led to breakthroughs in fusion energy and medical imaging; this work could similarly seed unforeseen technologies.
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The physics of plasmas - particularly magnetised plasmas - dictates the behaviour of much of the visible universe, from the outer layers of the Sun to the furthest reaches of the observable cosmos. In this proposal, we focus on several key unsolved problems in plasma astrophysics that are also prototypes for a wider and deeper understanding of cosmic plasmas as a whole. These are: (a) how do high-energy radiating electrons, ions and neutrons behave in solar flares and in interplanetary space? How are they accelerated, are they beamed and do they play a key role in flares and their terrestrial impact? (b) how does the Sun store and release energy in its magnetised atmosphere, from surface flows, to low atmosphere flaring activity, coronal mass ejections and interplanetary shocks? And what can be learned from the behaviour of solar plasmas to help resolve controversies over plasma structures like disks and clumps around hot stars or magnetised stars that are just forming? (c) How do pulsars radiate? How might the changing magnetic field at the decoupling era (the very early universe) seed the cosmos with energetic particles and influence the formation of structure? Our programme combines observational data with theoretical and numerical modelling, and spans a wide range of astronomical and technical problems, from solar surface flows to high-energy particle acceleration and circumstellar matter; from electromagnetic waves to relativistic particle beams; from image processing to statistical analysis of weak signals. We will bring all these skills to bear on astronomical questions at the heart of current efforts to better understand the universe.
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