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research article

Near-bed stratification controls bottom hypoxia in ice-covered alpine lakes

Perga, Marie-Elodie
•
Minaudo, Camille  
•
Doda, Tomy  
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March 27, 2023
Limnology and Oceanography

In ice-covered lakes, near-bottom oxygen concentration decreases for most of the wintertime, sometimes down to the point that bottom waters become hypoxic. Studies insofar have reached divergent conclusions on whether climate change limits or reinforces the extent and duration of hypoxia under ice, raising the need for a comprehensive understanding of the drivers of the dissolved oxygen (DO) dynamics under lake ice. Using high-temporal resolution time series of DO concentration and temperature across 14 mountain lakes, we showed that the duration of bottom hypoxia under ice varies from 0 to 236 d within lakes and among years. The variability of hypoxia duration was primarily explained by changes in the decay rate of DO above the lake bottom rather than by differences in DO concentration at the ice onset or in the ice-cover duration. We observed that the DO decay rate was primarily linked to physical controls (i.e., deep-water warming) rather than biogeochemical drivers (i.e., proxies for lake or catchment productivity). Using a simple numerical model, we provided a proof-of-concept that the near-bed stratification can be the mechanism tying the DO decay rate to the sediment heat release under the ice. We ultimately showed that the DO decay rate and hypoxia duration are driven by the summer light climate, with faster oxygen decline found under the ice of clearer cryostratified alpine lakes. We derived a framework theorizing how the hypoxia duration might change under the ice of alpine lakes in a warmer climate.

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Type
research article
DOI
10.1002/lno.12341
Web of Science ID

WOS:000956360100001

Author(s)
Perga, Marie-Elodie
Minaudo, Camille  
Doda, Tomy  
Arthaud, Florent
Beria, Harsh
Chmiel, Hannah E.  
Escoffier, Nicolas
Lambert, Thibault
Napolleoni, Raphaelle
Obrador, Biel
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Date Issued

2023-03-27

Publisher

American Society of Limnology and Oceanography

Published in
Limnology and Oceanography
Subjects

Limnology

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Oceanography

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Marine & Freshwater Biology

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Oceanography

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dissolved-oxygen

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climate

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dynamics

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shallow

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temperature

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depletion

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sediment

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water

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morphology

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phenology

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
APHYS  
Available on Infoscience
April 24, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197143
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