Geomorphic controls on the abundance and persistence of soil organic carbon pools in erosional landscapes

被引:0
作者
Brooke D. Hunter
Joshua J. Roering
Lucas C. R. Silva
Kimber C. Moreland
机构
[1] University of Oregon,Department of Earth Sciences
[2] University of Oregon,Environmental Studies Program
[3] University of Oregon,Department of Biology, Institute of Ecology and Evolution
[4] Lawrence Livermore National Laboratory,Center for Accelerator Mass Spectrometry
来源
Nature Geoscience | 2024年 / 17卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Soils play a central role in the global carbon cycle and constitute a key component of natural climate solutions that require quantitative predictions of soil organic carbon (SOC) dynamics at local to regional scales. In hilly and mountainous terrain, variations in uplift and stream incision generate gradients in erosion and hillslope morphology that control soil properties that impact the abundance and persistence of SOC. Here we use topographic and soil biogeochemical analyses to show that across 16 sites in our study region, total SOC stocks and the typically slower-cycling mineral-associated fraction of SOC decrease exponentially with modelled erosion rate from 21.0 to 0.2 kg m–2 and 12.0 to 0.1 kg m–2, respectively. Along the greater than order-of-magnitude erosional gradient, radiocarbon (Δ14C), soil thickness and texture data trend younger, thinner and coarser, respectively, such that fast-eroding sites have much less SOC than slow-eroding sites and are dominated by faster-cycling SOC pools. By coupling these erosion-driven soil and SOC trends with high-resolution topographic data, hilltop convexity and other erosion rate metrics can be readily applied to estimate SOC abundance and persistence in diverse landscape settings, facilitating our ability to predict carbon dynamics across a range of spatiotemporal scales.
引用
收藏
页码:151 / 157
页数:6
相关论文
共 88 条
  • [11] Schrumpf M(2022)The global potential for increased storage of carbon on land Proc. Natl Acad. Sci. USA 119 e2111312119-163
  • [12] Kaiser K(2019)Topographic controls of soil organic carbon on soil-mantled landscapes Sci. Rep. 9 115378-S153
  • [13] Mayer A(2021)The trajectory of soil development and its relationship to soil carbon dynamics Geoderma 403 151-56
  • [14] Hempel G(2018)Storage and export of soil carbon and mineral surface area along an erosional gradient in the Sierra Nevada, California Geoderma 321 S149-593
  • [15] Trumbore S(2011)Evolution of hillslope soils: the geomorphic theater and the geochemical play Appl. Geochem. 26 49-273
  • [16] Longbottom T(2011)Persistence of soil organic matter as an ecosystem property Nature 478 589-1234
  • [17] Walker WS(2018)Links among warming, carbon and microbial dynamics mediated by soil mineral weathering Nat. Geosci. 11 261-504
  • [18] Patton NR(2020)Conceptualizing soil organic matter into particulate and mineral‐associated forms to address global change in the 21st century Glob. Change Biol. 26 1226-26
  • [19] Lohse KA(2015)Iron-mediated stabilization of soil carbon amplifies the benefits of ecological restoration in degraded lands Ecol. Appl. 25 481-1721
  • [20] Seyfried MS(2004)Mechanisms of carbon sequestration in soil aggregates Crit. Rev. Plant Sci. 23 10-136