Mercury Accumulation in Permafrost Peatlands in Relation to Peat Accumulation and Permafrost History

Northern peatlands act as a globally important sink for atmospheric mercury (Hg). However, the environmental drivers that control long-term Hg accumulation rates (Hg-AR) in permafrost peatland systems remain understudied. With the aim to shed light on the influence of peat accumulation conditions and permafrost history on Hg accumulation, we have investigated Hg profiles in nine peat cores, which have previously been characterised using plant macrofossil analyses to reconstruct peat accumulation history. Across all cores, originating from sites in west-central Canada (n = 4) and northern Scandinavia (n = 5), highest Hg concentrations were found close to the peat surface with a maximum around 220 (µg Hg kg-1). Vertical profiles of Hg across successions of peat types in the cores revealed peaks of Hg concentrations in layers typical of drier surface conditions and slower peat accumulation. Calculated long-term Hg-ARs ranged from 0.3 to 2.6 µg Hg m-2 yr-1 between sites and were closely related to long-term carbon accumulation rates (C-AR). Our study shows that the net C-AR controls Hg-AR in Arctic permafrost peatlands. We further demonstrate that epigenetic permafrost twice as much Hg accumulated for the same amount of C, likely due to Hg enrichment during long-term peat decomposition in epigenetic as opposed to syngenetic permafrost peatlands.

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Publication Details

Journal
Mires and Peat
Published
2026-09-15
DOI
https://doi.org/10.19189/001c.170642
Primary Topic
Mercury impact and mitigation studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Mercury Accumulation in Permafrost Peatlands in Relation to Peat Accumulation and Permafrost History

Sofi Jonsson, Brittany Tarbier, Peter Kuhry, A. Britta K. Sannel et al.
Mires and Peat
Mercury impact and mitigation studies
article

Mercury Accumulation in Permafrost Peatlands in Relation to Peat Accumulation and Permafrost History

Sofi Jonsson, Brittany Tarbier, Peter Kuhry, A. Britta K. Sannel, Gustaf Hugelius, Charlotte Haugk, Anica Brach
article en

Abstract

Northern peatlands act as a globally important sink for atmospheric mercury (Hg). However, the environmental drivers that control long-term Hg accumulation rates (Hg-AR) in permafrost peatland systems remain understudied. With the aim to shed light on the influence of peat accumulation conditions and permafrost history on Hg accumulation, we have investigated Hg profiles in nine peat cores, which have previously been characterised using plant macrofossil analyses to reconstruct peat accumulation history. Across all cores, originating from sites in west-central Canada (n = 4) and northern Scandinavia (n = 5), highest Hg concentrations were found close to the peat surface with a maximum around 220 (µg Hg kg-1). Vertical profiles of Hg across successions of peat types in the cores revealed peaks of Hg concentrations in layers typical of drier surface conditions and slower peat accumulation. Calculated long-term Hg-ARs ranged from 0.3 to 2.6 µg Hg m-2 yr-1 between sites and were closely related to long-term carbon accumulation rates (C-AR). Our study shows that the net C-AR controls Hg-AR in Arctic permafrost peatlands. We further demonstrate that epigenetic permafrost twice as much Hg accumulated for the same amount of C, likely due to Hg enrichment during long-term peat decomposition in epigenetic as opposed to syngenetic permafrost peatlands.

Mires and PeatVol. 33
Stockholm University (SE), Bolin Centre for Climate Research (SE)
University of Alberta, European Commission, Svenska Forskningsrådet Formas, Knut och Alice Wallenbergs Stiftelse, Vetenskapsrådet, Norges Forskningsråd, Svenska Sällskapet för Antropologi och Geografi
Openalex Percentile: Top 13%
Mercury impact and mitigation studies
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