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A Critical Review on the Multiple Roles of Manganese in Stabilizing and Destabilizing Soil Organic Matter

期刊

ENVIRONMENTAL SCIENCE & TECHNOLOGY
卷 55, 期 18, 页码 12136-12152

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.est.1c00299

关键词

biogeochemistry; organo-mineral interactions; soil carbon sequestration; redox; microbial processes; iron oxides; manganese oxides

资金

  1. Laboratory Directed Research and Development Program of Oak Ridge National Laboratory
  2. U.S. Department of Energy [DE-AC05-00OR22725]

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Manganese plays a significant role in terrestrial ecosystems by influencing carbon cycling through various pathways, including mediating biochemical processes and oxidation of organic molecules. Current research on the impact of manganese oxides is limited, and there is still a lack of understanding of how manganese regulates litter decomposition pathways in diverse ecosystems.
Manganese (Mn) is a biologically important and redox-active metal that may exert a poorly recognized control on carbon (C) cycling in terrestrial ecosystems. Manganese influences ecosystem C dynamics by mediating biochemical pathways that include photosynthesis, serving as a reactive intermediate in the breakdown of organic molecules, and binding and/or oxidizing organic molecules through organo-mineral associations. However, the potential for Mn to influence ecosystem C storage remains unresolved. Although substantial research has demonstrated the ability of Fe- and Al-oxides to stabilize organic matter, there is a scarcity of similar information regarding Mn-oxides. Furthermore, Mn-mediated reactions regulate important litter decomposition pathways, but these processes are poorly constrained across diverse ecosystems. Here, we discuss the ecological roles of Mn in terrestrial environments and synthesize existing knowledge on the multiple pathways by which biogeochemical Mn and C cycling intersect. We demonstrate that Mn has a high potential to degrade organic molecules through abiotic and microbially mediated oxidation and to stabilize organic molecules, at least temporarily, through organo-mineral associations. We outline research priorities needed to advance understanding of Mn-C interactions, highlighting knowledge gaps that may address key uncertainties in soil C predictions.

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