Accumulation of soil carbon under elevated CO2 unaffected by warming and drought

被引:19
作者
Dietzen, Christiana A. [1 ,2 ]
Larsen, Klaus Steenberg [1 ]
Ambus, Per L. [3 ]
Michelsen, Anders [4 ]
Arndal, Marie Frost [1 ]
Beier, Claus [1 ]
Reinsch, Sabine [5 ]
Schmidt, Inger Kappel [1 ]
机构
[1] Univ Copenhagen, Dept Geosci & Nat Resource Management, Frederiksberg C, Denmark
[2] Univ Washington, Sch Environm & Forest Sci, Box 352100, Seattle, WA 98195 USA
[3] Univ Copenhagen, Dept Geosci & Nat Resource Management, Copenhagen K, Denmark
[4] Univ Copenhagen, Dept Biol, Copenhagen O, Denmark
[5] Environm Ctr Wales, Ctr Ecol & Hydrol, Bangor, Gwynedd, Wales
关键词
climate driver interactions; drought; elevated CO2; FACE; multifactor climate change experiment; soil carbon; warming; CLIMATE-CHANGE; ORGANIC-CARBON; TERRESTRIAL ECOSYSTEMS; VERTICAL-DISTRIBUTION; PROCESS RESPONSES; ATMOSPHERIC CO2; ROOT-GROWTH; NITROGEN; STORAGE; TEMPERATURE;
D O I
10.1111/gcb.14699
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Elevated atmospheric CO2 concentration and climate change may substantially alter soil carbon (C) dynamics, which in turn may impact future climate through feedback cycles. However, only very few field experiments worldwide have combined elevated CO2 (eCO(2)) with both warming and changes in precipitation in order to study the potential combined effects of changes in these fundamental drivers of C cycling in ecosystems. We exposed a temperate heath/grassland to eCO(2), warming, and drought, in all combinations for 8 years. At the end of the study, soil C stocks were on average 0.927 kg C/m(2) higher across all treatment combinations with eCO(2) compared to ambient CO2 treatments (equal to an increase of 0.120 +/- 0.043 kg C m(-2) year(-1)), and showed no sign of slowed accumulation over time. However, if observed pretreatment differences in soil C are taken into account, the annual rate of increase caused by eCO(2) may be as high as 0.177 +/- 0.070 kg C m(-2) year(-1). Furthermore, the response to eCO(2) was not affected by simultaneous exposure to warming and drought. The robust increase in soil C under eCO(2) observed here, even when combined with other climate change factors, suggests that there is continued and strong potential for enhanced soil carbon sequestration in some ecosystems to mitigate increasing atmospheric CO2 concentrations under future climate conditions. The feedback between land C and climate remains one of the largest sources of uncertainty in future climate projections, yet experimental data under simulated future climate, and especially including combined changes, are still scarce. Globally coordinated and distributed experiments with long-term measurements of changes in soil C in response to the three major climate change-related global changes, eCO(2), warming, and changes in precipitation patterns, are, therefore, urgently needed.
引用
收藏
页码:2970 / 2977
页数:8
相关论文
共 54 条
[41]   Organic nutrient uptake by mycorrhizal fungi enhances ecosystem carbon storage: a model-based assessment [J].
Orwin, Kate H. ;
Kirschbaum, Miko U. F. ;
St John, Mark G. ;
Dickie, Ian A. .
ECOLOGY LETTERS, 2011, 14 (05) :493-502
[42]   Below-ground process responses to elevated CO2 and temperature:: a discussion of observations, measurement methods, and models [J].
Pendall, E ;
Bridgham, S ;
Hanson, PJ ;
Hungate, B ;
Kicklighter, DW ;
Johnson, DW ;
Law, BE ;
Luo, YQ ;
Megonigal, JP ;
Olsrud, M ;
Ryan, MG ;
Wan, SQ .
NEW PHYTOLOGIST, 2004, 162 (02) :311-322
[43]   Soil carbon storage under simulated climate change is mediated by plant functional type [J].
Pendall, Elise ;
Osanai, Yui ;
Williams, Amity L. ;
Hovenden, Mark J. .
GLOBAL CHANGE BIOLOGY, 2011, 17 (01) :505-514
[44]  
Pinheiro J, 2018, NLME LINEAR NONLINEA, V3, P1, DOI DOI 10.4018/978-1-4666-7244-4.CH001
[45]   Biodiversity, Nitrogen Deposition, and CO2 Affect Grassland Soil Carbon Cycling but not Storage [J].
Reid, Joseph P. ;
Adair, E. Carol ;
Hobbie, Sarah E. ;
Reich, Peter B. .
ECOSYSTEMS, 2012, 15 (04) :580-590
[46]   Impact of a low level of CO2 enrichment on soil carbon and nitrogen pools and mineralization rates over ten years in a seasonally dry, grazed pasture [J].
Ross, D. J. ;
Newton, P. C. D. ;
Tate, K. R. ;
Luo, Dongwen .
SOIL BIOLOGY & BIOCHEMISTRY, 2013, 58 :265-274
[47]   Soil respiration is stimulated by elevated CO2 and reduced by summer drought: three years of measurements in a multifactor ecosystem manipulation experiment in a temperate heathland (CLIMAITE) [J].
Selsted, Merete B. ;
van der Linden, Leon ;
Ibrom, Andreas ;
Michelsen, Anders ;
Larsen, Klaus S. ;
Pedersen, Jane K. ;
Mikkelsen, Teis N. ;
Pilegaard, Kim ;
Beier, Claus ;
Ambus, Per .
GLOBAL CHANGE BIOLOGY, 2012, 18 (04) :1216-1230
[48]   Decrease in heathland soil labile organic carbon under future atmospheric and climatic conditions [J].
Thaysen, E. M. ;
Reinsch, S. ;
Larsen, K. S. ;
Ambus, P. .
BIOGEOCHEMISTRY, 2017, 133 (01) :17-36
[49]   Changes in soil organic carbon storage predicted by Earth system models during the 21st century [J].
Todd-Brown, K. E. O. ;
Randerson, J. T. ;
Hopkins, F. ;
Arora, V. ;
Hajima, T. ;
Jones, C. ;
Shevliakova, E. ;
Tjiputra, J. ;
Volodin, E. ;
Wu, T. ;
Zhang, Q. ;
Allison, S. D. .
BIOGEOSCIENCES, 2014, 11 (08) :2341-2356
[50]   Predicting soil carbon loss with warming [J].
van Gestel, Natasja ;
Shi, Zheng ;
van Groenigen, Kees Jan ;
Osenberg, Craig W. ;
Andresen, Louise C. ;
Dukes, Jeffrey S. ;
Hovenden, Mark J. ;
Luo, Yiqi ;
Michelsen, Anders ;
Pendall, Elise ;
Reich, Peter B. ;
Schuur, Edward A. G. ;
Hungate, Bruce A. .
NATURE, 2018, 554 (7693) :E4-E5