Soil carbon dynamics and climate change: current agro-environmental perspectives and future dimensions

Pratap Srivastava , Rishikesh Singh , Sachchidanand Tripathi , Hema Singh , Akhilesh Singh Raghubanshi

Energy, Ecology and Environment ›› 2016, Vol. 1 ›› Issue (5) : 315 -322.

PDF
Energy, Ecology and Environment ›› 2016, Vol. 1 ›› Issue (5) : 315 -322. DOI: 10.1007/s40974-016-0024-9
Article

Soil carbon dynamics and climate change: current agro-environmental perspectives and future dimensions

Author information +
History +
PDF

Abstract

The management of soil organic carbon (SOC) has now been identified as the most imperative dimension for managing the global climate change as well as soil fertility. In this respect, various agro-ecological approaches such as organic and integrated nutrient management system have been proposed worldwide, though accepted with limited enthusiasm. The understanding of the different soil C pools and processes are of vital importance before the implementation of these agro-ecological management practices, as it determines the success of SOC management. In the present study, we tried to encompass various SOC pools and processes governing the SOC dynamics in the agro-ecosystems. In this paper, dry tropical ecosystems having a unique ecological behaviour (such as strong nutrient conservation mechanisms and potential C sink nature) have been discussed especially due to its potential role in global climate change and mitigation, and linked soil fertility. It is proposed that a multi-factorial experimentation involving quantitative and qualitative change in soil available N, microbial and aggregate attributes, which has been recently found to be of crucial significance, is required for the proper mechanistic understanding of SOC dynamics. It may also help in the identification of some integrative functional indicators, which can be used to achieve a balanced SOC dynamics via suitable agro-management.

Keywords

Carbon accumulation / Dry tropical ecosystems / Organic systems / Soil CO2 efflux

Cite this article

Download citation ▾
Pratap Srivastava, Rishikesh Singh, Sachchidanand Tripathi, Hema Singh, Akhilesh Singh Raghubanshi. Soil carbon dynamics and climate change: current agro-environmental perspectives and future dimensions. Energy, Ecology and Environment, 2016, 1(5): 315-322 DOI:10.1007/s40974-016-0024-9

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Abhilash PC, Tripathi V, Edrisi SA, Dubey RK, Bakshi M, Dubey PK, Singh HB, Ebbs SD. Sustainability of crop production from polluted lands. Energy Ecol Environ, 2016, 1: 54-65

[2]

Adams M, Crawford J, Field D, Henakaarchchi N, Jenkins M, McBratney A et al (2011) Managing the soil-plant system to mitigate atmospheric CO2. Discussion paper for the Soil Carbon Sequestration Summit, 31 January–2 February 2011. The United States Studies Centre at the University of Sydney

[3]

Aswathanarayana U. Natural resources-technology, economics and policy, 2012 Boca Raton CRC Press

[4]

Batjes NH, Sombroek WG. Possibilities for carbon sequestration in tropical and subtropical soils. Glob Change Biol, 1997, 3: 161-173

[5]

Bhattacharya R, Prakash V, Kundu S, Srivastava AK, Gupta HS, Mitra S. Long term effects of fertilization on carbon and nitrogen sequestration and associated carbon and nitrogen in the Indian sub-Himalaya. Nutr Cycl Agroecosyst, 2010, 86: 1-16

[6]

Bijlsma RJ, Lambers H, Kooijman SALM. A dynamic whole-plant model of integrated metabolism of nitrogen and carbon. 1. Comparative ecological implications of ammonium–nitrate interactions. Plant Soil, 2000, 220: 49-69

[7]

Blair GJ, Lefroy RDB, Lise L. Soil carbon fractions based on their degree of oxidation, and the development of a carbon management index for agricultural systems. Aust J Agric Res, 1995, 46: 1459-1466

[8]

Brown S, Lugo A. Effect of forest clearing and succession of the carbon and nitrogen content of soils in Puerto Rico and US virgin soils. Plant Soil, 1990, 124: 53-64

[9]

Chantigny MH. Dissolved and water-extractable organic matter in soils: a review on the influence of land use and management practices. Geoderma, 2003, 113: 357-380

[10]

Chaparro JM, Sheflin AM, Manter DK, Vivanco JM. Manipulating the soil microbiome to increase soil health and plant fertility. Biol Fert Soils, 2012, 48: 489-499

[11]

Chen B. Energy, ecology and environment: a nexus perspective. Energy Ecol Environ, 2016, 1: 1-2

[12]

Conant RT, Ogle SM, Paul EA, Paustian K. Measuring and monitoring soil organic carbon stocks in agricultural lands for climate mitigation. Front Ecol Environ, 2011, 9: 169-173

[13]

Cruz C, Lips H, Martins-Loução MA. Nitrogen use efficiency by a slow-growing species as affected by CO2 levels, root temperature, N source and availability. J Plant Physiol, 2003, 160: 1421-1428

[14]

Currey PM, Johnson D, Sheppard LJ, Leith ID, Toberman H, Vanderwal R, Artz RR. Turnover of labile and recalcitrant soil carbon differ in response to nitrate and ammonium deposition in an ombrotrophic peatland. Glob Change Biol, 2010, 16: 2307-2321

[15]

Dungait JAJ, Hopkins DW, Gregory AS, Whitmore AP. SOM turnover is governed by accessibility not recalcitrance. Glob Change Biol, 2012, 18: 1781-1796

[16]

Eswaran H, Vandenberg E, Reich P. Organic carbon in soils of the world. Soil Sci Soc Am J, 1993, 57: 192-194

[17]

FAO (2001) Soil carbon sequestration for improved land management. World Soil Resources Reports 96, FAO, Rome

[18]

Flavel TC, Murphy DV. Carbon and nitrogen mineralization rates after application of organic amendments to soil. J Environ Qual, 2006, 35: 183-193

[19]

Forster P, Ramaswamy V, Artaxo P, Berntsen T, Betts R, Fahey DW et al (2007) Changes in atmospheric constituents and in radiative forcing. In: Climate change (2007). The physical science basis, Chapter 2

[20]

Goyal S, Chander K, Mundra MC, Kapoor KK. Influence of inorganic fertilizers and organic amendments on soil organic matter and soil microbial properties under tropical conditions. Biol Fert Soils, 1999, 29: 196-200

[21]

Guggenberger G. Humification and mineralization in soils. Microorganisms in soils: roles in genesis and functions, 2005 Berlin Heidelberg Springer 85-106

[22]

Houghton RA. Balancing the global carbon budget. Annu Rev Earth Planet Sci, 2007, 35: 313-347

[23]

Inbar Y, Chen Y, Hadar Y. Humic substances formed during the composting of organic matter. Soil Sci Soc Am J, 1990, 54: 1316-1323

[24]

IPCC (2014) Climate change 2014 synthesis report. Fifth assessment report. http://ar5-syr.ipcc.ch/. Accessed 26 Jan 2016

[25]

Jarecki MK, Lal R. Crop management for soil carbon sequestration. Crit Rev Plant Sci, 2003, 22: 471-502

[26]

Jha PB, Singh JS, Kashyap AK. Dynamics of viable nitrifier community and nutrient availability in dry tropical forest habitat as affected by cultivation and soil texture. Plant Soil, 1996, 180: 277-285

[27]

Jimenez M, Horra AM, Pruzzo L, Palma RM. Soil quality: a new index based on microbiological and biochemical parameters. Biol Fert Soil, 2002, 35: 302-306

[28]

Lal R. Soil degradation by erosion. Land Degrad Dev, 2001, 12: 519-539

[29]

Lal R. Global potential of soil carbon sequestration to mitigate the greenhouse effect. Crit Rev Plant Sci, 2003, 22: 151-184

[30]

Lal R. Soil carbon sequestration to mitigate climate change. Geoderma, 2004, 123: 1-22

[31]

Lal R. Enhancing crop yields in the developing countries through restoration of the soil organic carbon pool in agricultural lands. Land Degrad Dev, 2006, 17: 197-209

[32]

Lal R. Managing soils and ecosystems for mitigating anthropogenic carbon emissions and advancing global food security. BoiScience, 2010, 60: 708-721

[33]

Leifeld J, Kögel-Knabner I. Soil organic matter fractions as early indicators for carbon stock changes under different land-use?. Geoderma, 2005, 124: 143-155

[34]

Lugato E, Simonetti G, Morari F, Nardi S, Berti A, Giardini L. Distribution of organic and humic carbon in wet-sieved aggregates of different soils under long-term fertilization experiment. Geoderma, 2010, 157: 80-85

[35]

Luo Y, Su BO, Currie WS, Dukes JS, Finzi A, Hartwig U Progressive nitrogen limitation of ecosystem responses to rising atmospheric carbon dioxide. Bioscience, 2004, 54: 731-739

[36]

Lutzow M, Kogel-Knabner I, Ekschmitt K, Flessa H, Guggenberger G, Matzner E, Marschner B. SOM fractionation methods: relevance to functional pools and to stabilization mechanisms. Soil Biol Biochem, 2007, 39: 2183-2207

[37]

Lynch DH, Voroney RP, Warman PR. Soil physical properties and organic matter fractions under forages receiving composts, manure or fertilizer. Compos Sci Util, 2005, 13: 252-261

[38]

Mader P, Fliessbach A, Dubois D, Gunst L, Fried P, Niggli U. Soil fertility and biodiversity in organic farming. Science, 2002, 296: 1694-1697

[39]

Min K, Kang H, Lee D. Effects of ammonium and nitrate additions on carbon mineralization in wetland soils. Soil Biol Biochem, 2011, 43: 2461-2469

[40]

Nicolás C, Kennedy JN, Hernández T, García C, Six J. Soil aggregation in a semiarid soil amended with composted and non-composted sewage sludge—a field experiment. Geoderma, 2014, 219: 24-31

[41]

Ogle SM, Breidt FJ, Paustian K. Agricultural management impacts on soil organic carbon storage under moist and dry climatic conditions of temperate and tropical regions. Biogeochemistry, 2005, 72: 87-121

[42]

Paul EA, Collins HP, Leavitt SW. Dynamics of resistant soil carbon of Midwestern agricultural soils measured by naturally occurring 14 C abundance. Geoderma, 2001, 104: 239-256

[43]

Pimentel D, Harvey C, Resosudarmo P, Sinclair K, Kurz D, McNair M, Crist S, Shpritz L, Fitton L, Saffouri R, Blair R. Environmental and economic costs of soil erosion and conservation benefits. Science, 1995, 267: 1117-1123

[44]

Poeplau C, Don A. Sensitivity of soil organic carbon stocks and fractions to different land-use changes across Europe. Geoderma, 2013, 192: 189-201

[45]

Post WM, Kwon KC. Soil carbon sequestration and land-use change: processes and potential. Glob Change Biol, 2000, 6: 317-327

[46]

Post WM, Emanuel WR, Zinke PJ, Stangenberger AG. Soil carbon pools and world life zones. Nature, 1982, 298: 156-159

[47]

Powlson DS, Bhogal A, Chambers BJ, Coleman K, Macdonald AJ, Goulding KWT, Whitmore AP. The potential to increase soil carbon stocks through reduced tillage or organic material additions in England and Wales: a case study. Agric Ecosyst Environ, 2012, 146: 23-33

[48]

Purakayastha TJ, Rudrappa L, Singh D, Swarup A, Bhadraray S. Long-term impact of fertilizers on soil organic carbon pools and sequestration rates in maize–wheat–cowpea cropping system. Geoderma, 2008, 144: 370-378

[49]

Ryals R, Silver WL. Effects of organic matter amendments on net primary productivity and greenhouse gas emissions in annual grasslands. Ecol Appl, 2013, 23: 46-69

[50]

Ryan J, Masri S, Singh M. Seasonal changes in soil organic matter and biomass and labile forms of carbon as influenced by crop rotations. Comm Soil Sci Plant, 2009, 40: 188-199

[51]

Saraswat C, Kumar P. Climate justice in lieu of climate change: a sustainable approach to respond to the climate change injustice and an awakening of the environmental movement, 2016 Energy Ecol Environ DOI

[52]

Schmidt MWI, Torn MS, Abiven S, Dittmar T, Guggenberger G, Janssens IA, Kleber M, Kögel-Knabner I, Lehmann J, Manning DA. Persistence of soil organic matter as an ecosystem property. Nature, 2011, 478: 49-56

[53]

Silveira ML, Comerford NB, Reddy KR, Cooper WT, El-Rifai H. Characterization of soil organic carbon pools by acid hydrolysis. Geoderma, 2008, 144: 405-414

[54]

Singh H, Singh KP. Effect of residue placement and chemical fertilizer on soil microbial biomass under tropical dryland cultivation. Biol Fert Soils, 1993, 16: 275-281

[55]

Singh S, Singh JS. Microbial biomass associated with water-stable aggregates in forest, savanna and cropland soils of a seasonally dry tropical region, India. Soil Biol Biochem, 1995, 27: 1027-1033

[56]

Singh JS, Raghubanshi AS, Singh RS, Srivastava SC. Microbial biomass acts as a source of plant nutrients in dry tropical forests and savannah. Nature, 1989, 338: 499-500

[57]

Singh R, Babu JN, Kumar R, Srivastava P, Singh P, Raghubanshi AS. Multifaceted application of crop residue biochar as a tool for sustainable agriculture: an ecological perspective. Ecol Eng, 2015, 77: 324-347

[58]

Six J, Bossuyt H, Degryze S, Denef K. A history of research on the link between (micro) aggregates, soil biota, and soil organic matter dynamics. Soil Till Res, 2004, 79: 7-31

[59]

Smith JL, Paul EA. Bollag JM, Stotzky G. The significance of soil microbial biomass estimations. Soil biochemistry, 1990 New York Marcel Dekker 357-396

[60]

Srivastava P, Raghubanshi AS, Singh R, Tripathi SN. Soil carbon efflux and sequestration as a function of relative availability of inorganic N pools in dry tropical agroecosystem. Appl Soil Ecol, 2015, 96: 1-6

[61]

Srivastava P, Singh PK, Singh R, Bhadouria R, Singh DK, Singh S, Afreen T, Tripathi SN, Singh P, Singh H, Raghubanshi AS. Relative availability of inorganic N-pools shifts under land use change: an unexplored variable in soil carbon dynamics. Ecol Ind, 2016, 64: 228-236

[62]

Srivastava P, Singh R, Tripathi S, Raghubanshi AS. An urgent need for sustainable thinking in agriculture—an Indian scenario. Ecol Ind, 2016, 67: 611-622

[63]

Stockmann U, Adams MA, Crawford JW, Field DJ, Henakaarchchi N, Jenkins M The knowns, known unknowns and unknowns of sequestration of soil organic carbon. Agric Ecosyst Environ, 2013, 164: 80-99

[64]

Swift RS. Sequestration of carbon by soil. Soil Sci, 2001, 166: 858-871

[65]

Tisdall JM, Oades JM. Organic matter and water-stable aggregates in soils. J Soil Sci, 1982, 33: 141-163

[66]

Trumbore SE. Potential responses of soil organic carbon to global environmental change. Proc Nat Acad Sci, 1997, 94: 8284-8291

[67]

Trumbore S. Radiocarbon and soil carbon dynamics. Ann Rev Earth Planet Sci, 2009, 37: 47-66

[68]

Tu C, Ristaino JB, Hu S. Soil microbial biomass and activity in organic tomato farming systems: effects of organic inputs and straw mulching. Soil Biol Biochem, 2006, 38: 247-255

[69]

USEPA (2014) U.S. National Climate Assessment. http://nca2014.globalchange.gov/. Accessed 26 Jan 2016

[70]

Vaccari FP, Lugato E, Gioli B, D’Acqui L, Genesio L, Toscano P Land use change and soil organic carbon dynamics in Mediterranean agro-ecosystems: the case study of Pianosa Island. Geoderma, 2012, 175: 29-36

[71]

Whalen JK, Chang C. Macroaggregate characteristics in cultivated soils after 25 years annual manure applications. Soil Sci Soc Am J, 2002, 66: 1637-1647

[72]

Yan H, Cao M, Liu J, Tao B. Potential and sustainability for carbon sequestration with improved soil management in agricultural soils of China. Agric Ecosyst Environ, 2007, 121: 325-335

[73]

Yang Y, Guo J, Chen G, Yin Y, Gao R, Lin C. Effects of forest conversion on soil labile organic carbon fractions and aggregate stability in subtropical China. Plant Soil, 2009, 323: 153-162

[74]

Zsolnay A. Piccolo A. Dissolved humus in soil waters. Humic substances in terrestrial ecosystems, 1996 Amsterdam Elsevier 171-223

Funding

Council for Scientific and Industrial Research (CSIR), New Delhi, India

University Grants Commission

AI Summary AI Mindmap
PDF

173

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/