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A step towards microlitter risk assessment: modelling microlitter storage potential of the UK seabed

Philosophical Transactions of the Royal Society A Mathematical Physical and Engineering Sciences 2025 Score: 38 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Alexandra R. McGoran, Adil Bakir, Adil Bakir, Briony Silburn, Adam Porter, Adil Bakir, Adam Porter, Adam Porter, Adam Porter, Adil Bakir, Tamara S. Galloway, Adil Bakir, Adil Bakir, Adam Porter, Ceri Lewis Adil Bakir, Adil Bakir, Adil Bakir, Adil Bakir, Alexandra R. McGoran, Alexandra R. McGoran, Alexandra R. McGoran, Alexandra R. McGoran, Alexandra R. McGoran, Adam Porter, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Adil Bakir, Tamara S. Galloway, Adil Bakir, Adil Bakir, Adil Bakir, Adil Bakir, Adil Bakir, Adil Bakir, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Briony Silburn, Jon Barry, Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Adam Porter, Adam Porter, Adam Porter, Adam Porter, Adam Porter, Adam Porter, Tamara S. Galloway, Adam Porter, Adam Porter, Tamara S. Galloway, Tamara S. Galloway, Alexandra R. McGoran, Tamara S. Galloway, Alexandra R. McGoran, Alexandra R. McGoran, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Adil Bakir, Tamara S. Galloway, Tamara S. Galloway, Adil Bakir, Adam Porter, Adil Bakir, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Adil Bakir, Ceri Lewis Ceri Lewis Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Ceri Lewis Ceri Lewis Tamara S. Galloway, Jon Barry, Jon Barry, Adam Porter, Tamara S. Galloway, Tamara S. Galloway, Briony Silburn, Tamara S. Galloway, Adam Porter, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Briony Silburn, Adam Porter, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Adil Bakir, Adil Bakir, Adil Bakir, Adil Bakir, Adil Bakir, Alexandra R. McGoran, Alexandra R. McGoran, Alexandra R. McGoran, Alexandra R. McGoran, Alexandra R. McGoran, Adam Porter, Adam Porter, Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Jon Barry, Briony Silburn, Briony Silburn, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Alexandra R. McGoran, Adil Bakir, Tamara S. Galloway, Adil Bakir, Adil Bakir, Alexandra R. McGoran, Tamara S. Galloway, Alexandra R. McGoran, Adil Bakir, Adil Bakir, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Adil Bakir, Roger H. Brookes, Jon Barry, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Adil Bakir, Adil Bakir, Ceri Lewis Adil Bakir, Tamara S. Galloway, Alexandra R. McGoran, Alexandra R. McGoran, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Ceri Lewis William Procter, Jon Barry, Jon Barry, Adil Bakir, Tamara S. Galloway, William Procter, Adil Bakir, Adil Bakir, Tamara S. Galloway, Adil Bakir, Briony Silburn, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Alexandra R. McGoran, Tamara S. Galloway, Tamara S. Galloway, Alexandra R. McGoran, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Clément Garcia, Ceri Lewis Ceri Lewis Ceri Lewis Tamara S. Galloway, Ceri Lewis Ceri Lewis Ceri Lewis Claire Mason, Ceri Lewis Tamara S. Galloway, Ceri Lewis Adam Porter, Tamara S. Galloway, Claire Mason, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Claire Mason, Stefan G. Bolam, Adam Porter, Tamara S. Galloway, David S. Clare, Ceri Lewis Keith M. Cooper, Anna Downie, Anna Downie, J. B. Ellis, J. B. Ellis, Tamara S. Galloway, Daniel Wood, Claire Phillips, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Adam Porter, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis

Summary

Researchers developed a geospatial model of microlitter storage potential across UK seabed sediments using physical seabed properties from 2017-2021 observations, providing a distribution layer for assessing long-term microplastic sinks in the marine environment.

Seafloor sediments have been defined as sinks for microplastics in the marine environment and could therefore represent suitable matrices for their long-term monitoring. Previous studies indicated the widespread distribution of microlitter in seafloor sediments for the UK. In the present study, observations from 2017 to 2021 were used to produce a microlitter distribution model (unitless), derived from physical properties of the seabed that are known to drive the storage capacity of microlitter. The predicted distribution model was converted into a geospatial data layer and plotted against additional open access data layers for likely sources of marine litter (e.g. marine structures) as well as data layers for more sensitive features around the UK (e.g. marine protected areas (MPAs)). Visualization of the accumulation zones for microlitter against the different layers allowed the identification of areas potentially at risk from an increased addition of microlitter from various sources (e.g. dredge disposal sites). Identification of potential risks and prioritization for different zones of action would help the development of national and regional monitoring strategies while reducing costs of multi-compartment, larger scale monitoring programmes. Additional observations and targeted monitoring data are needed to link potential sources of accumulations for microplastics with a higher level of certainty.This article is part of the Theo Murphy meeting issue 'Sedimentology of plastics: state of the art and future directions'.

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