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Carbon potentials of different biochars derived from municipal solid waste in a saline soil

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摘要 There are numerous studies conducted on biochar for its carbon (C) sequestration potential;however,there are limited studies available on the behavior of salt-affected soils related to biochar application.Therefore,more studies are needed to elucidate the mechanisms through which biochar affects saline soil properties.In this study,biochars were produced from solid waste at pyrolysis temperatures of 300,500,and 700?C (BC300,BC500,and BC700,respectively)and applied to a saline soil to evaluate their impacts on soil carbon dioxide (CO_(2)) efflux,C sequestration,and soil quality.A soil incubation experiment lasting for 107 d was conducted.The results showed that soil CO_(2) efflux rate,cumulative CO_(2) emission,active organic C (AOC),and organic matter (OM)significantly increased with BC300 application to a greater extent than those with BC500 and BC700 as compared to those in the no-biochar control (CK).However,soil C non-lability did not significantly increase in the treatments with biochars,except BC700,as compared to that in CK.Besides improving the soil quality by increasing the soil AOC and OM,BC300 showed positive impacts in terms of increasing CO_(2) emission from the saline soil,while BC500 and BC700 showed greater potentials of sequestering C in the saline soil by increasing the soil non-labile C fraction.The recalcitrance index (R50) values of BC500 and BC700 were>0.8,indicating their high stability in the saline soil.It could be concluded that biochars pyrolyzed at high temperatures (?500?C)could be suitable in terms of C sequestration,while biochars pyrolyzed at low temperatures (?300?C) could be suitable for improving saline soil quality.
出处 《Pedosphere》 SCIE CAS CSCD 2022年第2期283-293,共11页 土壤圈(英文版)
基金 partially supported by the University Research Fund Program of the Quaid-i-Azam University, Pakistan。
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  • 1Atkinson C J, Fitzgerald J D, Hipps N A. 2010. Potential mecha- nisms for ahieving agricultural benefits from biochax appli- cation to temperate soils: a review. Plant Soil. 337: 1-18.
  • 2Bai M, Wilske B( Buegger F, Bruun E W, Bach M, Frede H G, Breuer L. 2014. Biodegradation measurements confirm the predictive value of the O:C-ratio for biochar recalcitrance. J Plant Nutr Soil Sci. 1T7: 633-637.
  • 3Bai M, Wilske B, Buegger F, Espersch/itz J, Kammann G I, Eck- hardt C, Koestler M, Kraft P, Bach M, Frede H G, Breuer L. 2013. Degradation kinetics of biochar from pyrolysis and hydrothermal carbonization in temperate soils. Plant Soil. 372: 375-387.
  • 4Bamminger C, Marschner B, J/ischke E. 2014. An incubation study on the stability and biological effects of pyrogenic and hydrothermal biochar in two soils. Eur J Soil Sci. 65: 72-82.
  • 5Becker R, Bubner B, lemus R, Wirth S, Ulrich A. 2014. Impact of multi-resistant transgenic Bt maize on straw decomposi- tion and the involved microbial communities. Appl Soil Ecol. 73: 9-18.
  • 6Becker R, Dorgerloh U, Helmis M, Mumme J, Diakit@ M, Ne- hls, I. 2013. Hydrothermally carbonized plant materials: Pa- tterns of volatile organic compounds detected by gas chroma- tography. Bioresource Technol. 130: 621-628.
  • 7Biederman L A, Havpole W S. 2013. Biochar and its effects on plant productivity and nutrient cycling: a meta-analysis. GCB Bioenerg. 5: 202-214.
  • 8Bruun E W, Ambus P, Egsgaard H, Hauggaard-Nielsen H. 2012. Effects of slow and fast pyrolysis biochar on soil C and N turnover dynamics. Soil Biol Biochem. 46: 73-79.
  • 9Cheng C H, Lehmann J, Thies J E, Burton S D. 2008. Stability of black carbon in soils across a climatic gradient. J Geophys Res. 113: G02027, doi:10.1029/2007JG000642.
  • 10Clough T J, Condron L M, Kammann C, Mfiller C. 2013. A re- view of biochar and soil nitrogen dynamics. Agronomy. 3: 275-293.

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