Completed Climate, Earth & Environment Plants, Animals & Ecology

BLACK and BLOOM: variations in the albedo of the Greenland Ice Sheet as a result of interactions between microbes and particulates.

In plain English

AI plain-English summary

Tiny, dark-pigmented algae are turning the Greenland Ice Sheet grey, accelerating its melt by absorbing more sunlight than clean white ice would. Current models for predicting ice sheet melt and sea level rise ignore these microorganisms entirely. Each gram of wet snow on the ice surface can contain thousands of pigmented algae and cyanobacteria, which also glue together soot and dust particles from industrial activity and forest fires. The result is a darker, less reflective surface—lower albedo—that soaks up more solar energy and melts faster. The darkest areas of southwest Greenland already show the highest cell counts. If these microbes spread across the ice sheet as warming creates more wet surfaces for longer periods, the rate of melt could increase sharply. The Greenland Ice Sheet currently contributes over 1 mm to global sea level rise each year, threatening coastal and low-lying populated areas. This project will be the first to measure how the microorganisms grow and spread under a warming climate, and to incorporate that biological darkening into predictive models. If successful, it will give governments and policymakers a more accurate picture of future sea level rise—and the time they have to prepare coastal defences, manage relocations, and plan infrastructure investments.

View original technical description
Concerns are growing about how much melting occurs on the surface of the Greenland Ice Sheet (GrIS), and how much this melting will contribute to sea level rise (1). It seems that the amount of melting is accelerating and that the impact on sea level rise is over 1 mm each year (2). This information is of concern to governmental policy makers around the world because of the risk to viability of populated coastal and low-lying areas. There is currently a great scientific need to predict the amount of melting that will occur on the surface of the GrIS over the coming decades (3), since the uncertainties are high. The current models which are used to predict the amount of melting in a warmer climate rely heavily on determining the albedo, the ratio of how reflective the snow cover and the ice surface are to incoming solar energy. Surfaces which are whiter are said to have higher albedo, reflect more sunlight and melt less. Surfaces which are darker adsorb more sunlight and so melt more. Just how the albedo varies over time depends on a number of factors, including how wet the snow and ice is. One important factor that has been missed to date is bio-albedo. Each drop of water in wet snow and ice contains thousands of tiny microorganisms, mostly algae and cyanobacteria, which are pigmented - they have a built in sunblock - to protect them from sunlight. These algae and cyanobacteria have a large impact on the albedo, lowering it significantly. They also glue together dust particles that are swept out of the air by the falling snow. These dust particles also contain soot from industrial activity and forest fires, and so the mix of pigmented microbes and dark dust at the surface produces a darker ice sheet. We urgently need to know more about the factors that lead to and limit the growth of the pigmented microbes. Recent work by our group in the darkest zone of the ice sheet surface in the SW of Greenland shows that the darkest areas have the highest numbers of cells. Were these algae to grow equally well in other areas of the ice sheet surface, then the rate of melting of the whole ice sheet would increase very quickly. A major concern is that there will be more wet ice surfaces for these microorganisms to grow in, and for longer, during a period of climate warming, and so the microorganisms will grow in greater numbers and over a larger area, lowering the albedo and increasing the amount of melt that occurs each year. The nutrient - plant food - that the microorganisms need comes from the ice crystals and dust on the ice sheet surface, and there are fears that increased N levels in snow and ice may contribute to the growth of the microorganisms. This project aims to be the first to examine the growth and spread of the microorganisms in a warming climate, and to incorporate biological darkening into models that predict the future melting of the GrIS. References 1. Sasgen I and 8 others. Timing and origin of recent regional ice-mass loss in Greenland. Earth and Planetary Science Letters, 333-334, 293-303(2012). 2. Rignot, E., Velicogna, I., van den Broeke, M. R., Monaghan, A. & Lenaerts, J. Acceleration of the contribution of the Greenland and Antarctic ice sheets to sea level rise. Geophys. Res. Lett. 38, L05503, doi:10.1029/2011gl046583 (2011). 3. Milne, G. A., Gehrels, W. R., Hughes, C. W. & Tamisiea, M. E. Identifying the causes of sea-level change. Nature Geosci 2, 471-478 (2009).

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Researchers

Alexandre Anesio (Co-Investigator)Christopher Williamson (Principal Investigator)Jemma Wadham (Co-Investigator)Johanna Laybourn-Parry (Co-Investigator)Jonathan Bamber (Co-Investigator)Marian Yallop (Co-Investigator)Martyn Tranter (Principal Investigator)Nicholas Roberts (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

DEEP PURPLE: darkening of the Greenland Ice Sheet
Investigating the Dynamic Response of the Greenland Ice Sheet to Climate Forcing using a Geophysical, Remote-Sensing and Numerical Modelling Framework
Thresholds for the future of the Greenland ice-sheet
Meltwater Ice-sheet Interactions and the changing climate of Greenland (MII-Greenland)
Estimating and reducing the uncertainty in the future behaviour of the Greenland Ice Sheet

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Research Grant

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