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土地利用变化下铁在红树林土壤有机碳(去)稳定中的作用

Iron's role in soil organic carbon (de)stabilization in mangroves under land use change.

作者信息

Ruiz Francisco, Bernardino Angelo Fraga, Queiroz Hermano Melo, Otero Xosé Luis, Rumpel Cornelia, Ferreira Tiago Osório

机构信息

Department of Soil Science, "Luiz de Queiroz" College of Agriculture/University of São Paulo (ESALQ/USP), Av. Pádua Dias 11, Piracicaba, São Paulo, Brazil.

Department of Oceanography, Federal University of Espírito Santo, Vitória, Espírito Santo, Brazil.

出版信息

Nat Commun. 2024 Nov 30;15(1):10433. doi: 10.1038/s41467-024-54447-z.

Abstract

Mangroves are coastal hotspots for carbon storage and yet face multiple threats from anthropogenic activities. Here we explore the role of iron-mediated organomineral interactions (FeOMIs) in soil organic carbon (SOC) stabilization and their sensitivity to land use change (LUC) in Amazonian mangroves. We show that Fe oxides protect more labile SOC fractions, which would otherwise be vulnerable to biological degradation, with poorly crystalline Fe oxides being the most effective phase for SOC retention. Despite the fragile equilibrium of FeOMI under dynamic redox conditions in mangroves, this balance sustains approximately 8% of total SOC. The studied LUC scenario led to massive loss of FeOMIs as less crystalline phases were either degraded or transformed into more crystalline ones, losing the efficiency in retaining SOC. The conversion of mangroves to pastures and shrimp ponds, which are pervasive globally, triggers important biogeochemical changes, with major implications for the carbon sequestration potential of mangrove soils.

摘要

红树林是碳储存的沿海热点地区,但面临着来自人为活动的多重威胁。在这里,我们探讨了铁介导的有机矿物相互作用(FeOMIs)在土壤有机碳(SOC)稳定中的作用及其对亚马逊红树林土地利用变化(LUC)的敏感性。我们发现,铁氧化物保护了更多不稳定的SOC组分,否则这些组分易受生物降解影响,其中结晶性较差的铁氧化物是保留SOC最有效的相。尽管红树林动态氧化还原条件下FeOMI的平衡脆弱,但这种平衡维持了约8%的总SOC。所研究的土地利用变化情景导致FeOMIs大量损失,因为结晶性较差的相要么被降解,要么转化为结晶性更强的相,从而失去了保留SOC的效率。红树林向牧场和虾塘的转变在全球范围内普遍存在,引发了重要的生物地球化学变化,对红树林土壤的碳固存潜力具有重大影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d326/11608346/ba7b018d5dfd/41467_2024_54447_Fig1_HTML.jpg

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