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Geoderma· 2026Q1

Weathering intensity and mineral association facilitate the accumulation of soil organic carbon along an alpine toposequence

Joshua Bennett-Jones, Peter M. Kopittke, Wenxiang Zhou, Lars Thomsen et al.

Short summary

Alpine soil organic carbon (SOC) accumulation is driven by mineral associations, not climate or productivity alone, with SOC increasing seven-fold from 1100m to 1700m elevation before declining.

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Key points

  • Soil organic carbon (SOC) increased seven-fold (20.1 to 148 g C kg−1 soil) along an alpine toposequence from 1100m to 1700m elevation.
  • SOC was predominantly mineral-associated (ca. 64%) across all elevations.
  • Higher SOC concentrations correlated with greater mineral alteration and abundance of reactive minerals.
  • The proportional distribution of C functional groups was consistent across elevations, indicating accumulation is not due to selective preservation of specific biomolecules.

AI-generated from the title and abstract; the full text is not read.

Abstract

Alpine and other cold region ecosystems store globally important soil organic carbon (SOC) stocks that are vulnerable to warming. Therefore, determining the mechanisms that regulate SOC persistence is key to identifying the susceptibility to loss. In this study, we examined how climate, mineralogy and soil properties shape SOC accumulation, partitioning between particulate organic matter (POM) and mineral-associated OM (MAOM) and the associated C functional group composition along an alpine toposequence (1100 m to 2200 m elevation) in Kosciuszko National Park, Australia. Bulk SOC increased seven-fold (from 20.1 to 148 g C kg −1 soil) from 1100 to 1700 m, before declining over two-fold to 2200 m. Across all elevations, SOC was predominantly mineral associated (ca. 64%). Higher SOC concentrations coincided with a greater degree of mineral alteration and abundance of reactive minerals, consistent with enhanced MAOM formation. Despite large differences in SOC concentrations, the proportional distribution of C functional groups remained consistent across elevations and fractions, indicating that the accumulation and persistence of SOC was not associated with the selective preservation or loss of specific biomolecules. These results suggest that sensitivity of alpine SOC cannot be inferred from climate or productivity alone – it also depends on how pedogenesis and weathering regulate the accumulation of OC as MAOM. Consequently, our study provides evidence that mineral associations are driving the accumulation and stabilisation of the SOC pool and that these associations may help explain differences in warming sensitivity among alpine and other cold-region ecosystems.

The authors' abstract, as published at the source. Geoderma, 2026 · DOI ↗

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Soil ScienceAgricultural and Biological Sciences