Limited recovery of soil organic carbon and soil biophysical functions after old field restoration in an agricultural landscape

被引:3
|
作者
Parkhurst, Tina [1 ,2 ]
Standish, Rachel J. [2 ]
Prober, Suzanne M. [3 ,4 ]
机构
[1] Murdoch Univ, Harry Butler Inst, Murdoch, WA 6150, Australia
[2] Murdoch Univ, Sch Environm & Conservat Sci, Murdoch, WA, Australia
[3] CSIRO Environm, Canberra, ACT, Australia
[4] Univ Western Australia, Sch Biol Sci, Crawley, WA, Australia
关键词
ecological restoration; Eucalyptus loxophleba; litter decomposition; soil biophysical functions; soil bulk density; soil organic carbon; temperate eucalypt woodland; tree planting; York gum; CLIMATE-RESILIENT RESTORATION; LAND-USE CHANGE; ECOLOGICAL RESTORATION; ECOSYSTEM SERVICES; WESTERN-AUSTRALIA; WOOD DECAY; BIODIVERSITY; DECOMPOSITION; TERMITES; IMPACTS;
D O I
10.1111/aec.13519
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The conversion of woodland ecosystems to agricultural landscapes has led to unprecedented losses of biodiversity and ecosystem functioning globally. Unsustainable agricultural practices have contributed to the degradation of soil's physical and biogeochemical properties. Ecological restoration of unproductive agricultural land is imperative for reversing land degradation and ameliorating the degrading effects of agriculture on biodiversity and ecosystem functions. However, it is unclear to what extent common restoration activities, such as tree planting, can facilitate the recovery of ecosystem condition and in particular, improve soil physical, biogeochemical and biotic components. Here, we investigated how the cessation of cropping, followed by tree planting, affected soil carbon concentrations and key biophysical soil functions. Data were collected across 10 sites a decade after the replanting of woody species on old fields in semi-arid Western Australia. We applied a chronosequence approach and measured soil functions in fallow cropland (restoration starting point), 10-year-old planted old fields and intact woodland reference sites (restoration target point). We stratified sampling between open areas and patches under trees in planted old fields and reference woodlands to account for inherent biophysical differences. Soils under planted trees recovered to some extent, having reduced soil compaction and higher soil penetration depth in comparison with the fallow cropland. However, soils under trees in planted old fields did not reach woodland reference conditions for these properties. Moreover, recovery was not evident for other soil physical, biogeochemical and biotic components such as soil organic carbon, soil moisture, leaf litter and woody debris decomposition rates. Limited recovery of soil functions may be at least partly explained by time lags associated with slow growth rates of planted trees in dry ecosystems. Our study shows that the legacy of cropping can persist over long timeframes in semi-arid regions, with modest signs of woodland recovery beginning to emerge 10 years after tree planting. Expected changes of soil biophysical functions in old fields after planting of perennial woody vegetation in comparison to the restoration starting point (fallow cropland) and restoration target (woodland reference).image
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Growing soil organic carbon in dryland agricultural systems
    Farrell, Mark
    Vadakattu, Gupta
    MICROBIOLOGY AUSTRALIA, 2023, 44 (01) : 18 - 21
  • [32] Soil Organic Matter, Soil Structure, and Bacterial Community Structure in a Post-Agricultural Landscape
    Yavitt, Joseph B.
    Pipes, Gwendolyn T.
    Olmos, Emily C.
    Zhang, Jiangbo
    Shapleigh, James P.
    FRONTIERS IN EARTH SCIENCE, 2021, 9
  • [33] Effect of Biochar on Agricultural Soil Aggregates and Organic Carbon
    Meng Y.
    Shen Y.-W.
    Meng W.-W.
    Wang X.-Q.
    Li Z.-X.
    Liu K.-C.
    Dai H.-C.
    Huanjing Kexue/Environmental Science, 2023, 44 (12): : 6847 - 6856
  • [34] Soil organic carbon changes in a Carolina Bay wetland 15 years after restoration
    Moritz, Christopher M.
    Vepraskas, Michael J.
    Ricker, Matthew C.
    SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2023, 87 (03) : 696 - 706
  • [35] Enhancing crop yields in the developing countries through restoration of the soil organic carbon pool in agricultural lands
    Lal, R
    LAND DEGRADATION & DEVELOPMENT, 2006, 17 (02) : 197 - 209
  • [36] Recovery after volcanic ash deposition: vegetation effects on soil organic carbon, soil structure and infiltration rates
    Danny Dwi Saputra
    Rika Ratna Sari
    Kurniatun Hairiah
    Didik Widianto
    Meine Suprayogo
    Plant and Soil, 2022, 474 : 163 - 179
  • [37] Economic efficiency of innovation in the restoration of soil resources in organic agricultural production
    Kachanova, Ludmila
    Bondarenko, Anatoly
    INNOVATIVE TECHNOLOGIES IN SCIENCE AND EDUCATION (ITSE-2020), 2020, 210
  • [38] Recovery after volcanic ash deposition: vegetation effects on soil organic carbon, soil structure and infiltration rates
    Saputra, Danny Dwi
    Sari, Rika Ratna
    Hairiah, Kurniatun
    Widianto
    Suprayogo, Didik
    van Noordwijk, Meine
    PLANT AND SOIL, 2022, 474 (1-2) : 163 - 179
  • [39] Field variability of carbon isotopes in soil organic carbon
    Leavitt, SW
    Paul, EA
    Pendall, E
    Pinter, PJ
    Kimball, BA
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1997, 123 (1-4): : 451 - 454
  • [40] Field variability of carbon isotopes in soil organic carbon
    Leavitt, S.W.
    Paul, E.A.
    Pendall, E.
    Pinter Jr., P.J.
    Kimball, B.A.
    Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms, 1997, 123 (1-4): : 451 - 454