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Fungal pathogens are expert manipulators of their plant hosts, which is achieved through the activity of secreted effector proteins which disable plant immunity. Understanding effector function has
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gaps, and to apply and develop different approaches to recording, monitoring, and conserving tracks. This work will form the evidence base for: [1] considering the merits and practicalities for fossil
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have expanded our understanding of methanogens to novel phyla such as Bathyarchaeota and Methanomethyliaceae. These studies suggest that the degradation of one-carbon compounds plays a critical role in
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considering equilibrium or out of equilibrium systems, strongly correlated and/or non-Abelian settings, and how these structures manifest in realistic, experimentally relevant platforms. The work will include
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predictive checking, model comparison) • Computational modelling with Python and Dynesty, JAX, NumPyro, and PyTorch • Use of asteroseismic and spectroscopic survey data (e.g. PLATO, Gaia, APOGEE, TESS) • High
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the Nanophotonics group of Prof Angela Demetriadou (https://www.birmingham.ac.uk/staff/profiles/physics/demetriadou-angela.aspx ), which is part of the Metamaterials and Nanophotonics group (https
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is part of the Metamaterials and Nanophotonics group (https://www.birmingham.ac.uk/research/centres-institutes/research-in-physics-and-astronomy/quantum-matter-and-photonics/metamaterials-and
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Join the University of Birmingham for groundbreaking PhD research to make 6G possible! Future radio communication systems (6G and beyond) will use frequencies above 100 GHz to achieve bit rates
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-swimmer is the chemically active drop. These microscopic drops use chemical energy from an ambient fuel to swim and explore their surroundings. Their appeal lies in their ability to be manufactured in large
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sequencing, metatranscriptomics and metagenomics to link taxa and functional genes (pmoA, mmoX, phnJ). Depth-resolved analyses will reveal which methanotroph taxa align more strongly with sediment fluxes