Otwarty dostęp

Does Biochar Influence Soil CO2 Emission Four Years After Its Application to Soil?


Zacytuj

Agehara, S., Warncke, D. D. (2005). Soil alternate wetting and drying pure and temperature effects on nitrogen release from organic nitrogen sources. Soil Science Society of America Journal, 69, 1855.10.2136/sssaj2004.0361 Search in Google Scholar

Atarashi-Andoh, M., Koarashi, J., Ishizuka, S., Hirai, K. (2012). Seasonal patterns and control factors of CO2 effluxes from surface litter, soil organic carbon, and root-derived carbon estimated using radiocarbon signatures. Agricultural and Forest Meteorology, 152, 149–158.10.1016/j.agrformet.2011.09.015 Search in Google Scholar

Bruun, E. W., Hauggaard-Nielsen, H., Ibrahim, N., Egsgaard, H., Ambus, P., Jensen, P. A., Dam-Johansen, K. (2011). Influence of fast pyrolysis temperature on biochar labile fraction and short-term carbon loss in a loamy soil. Biomass & Bioenergy, 35, 1182–1189.10.1016/j.biombioe.2010.12.008 Search in Google Scholar

Case, S. D. C., McNamara, N. P., Reay, D. S., Whitaker, J. (2012). The effect of biochar addition on N2O and CO2 emissions from a sandy loam soil – The role of soil aeration. Soil Biology & Biochemistry, 51, 125–134.10.1016/j.soilbio.2012.03.017 Search in Google Scholar

El-Naggar, A. H., Usman, A. R. A., Al-Omran, A., Yong, S. O., Ahmad, M., Al-Wabel, M. I. (2015). Carbon mineralization and nutrient availability in calcareous sandy soils amended with woody waste biochar. Chemosphere, 138, 67–73.10.1016/j.chemosphere.2015.05.052 Search in Google Scholar

Follett, R. F. (1997). CRP and microbial biomass Dynamics in temperate climates. In Lal, R. (ed.). Management of carbon sequestration in soil. Boca Ration: CRP Press (305–322). Search in Google Scholar

Forrester, J.A., Mladenoff, J.D., Gower, S.T., Stoffe. J.L. (2012). Interactions of temperature and moisture with respiration from coarse woody debris in experimental forest canopy gaps. Forest Ecology and Management, 265, 124–132.10.1016/j.foreco.2011.10.038 Search in Google Scholar

Ge, X. G., Cao, Y. H., Zhou, B., Wang, X. M., Yang, Z. Y., Li, M. H. (2019). Biochar addition increases subsurface soil microbial biomass but has limited effects on soil CO2 emissions in subtropical moso bamboo plantations. Applied Soil Ecology, 142, 155–165.10.1016/j.apsoil.2019.04.021 Search in Google Scholar

Glaser, B., Balashov, E., Haumaier, L., Guggenberger, G., Zech, W. (2000). Black carbon in density fractions of anthropogenic soils of the Brazilian Amazon region. Organic Geochemistry, 31, 669–678.10.1016/S0146-6380(00)00044-9 Search in Google Scholar

Gregorich, E. G., Greek, K. J., Anderson, D. W., Liang, B. C. (1998). Carbon distribution and losses: erosion and deposition effects. Soil and Tillage Research, 47(3–4), 291.10.1016/S0167-1987(98)00117-2 Search in Google Scholar

Horák, J., Šimanský, V., Aydin, E., Igaz, D., Buchkina, N., Balashov, E. (2020). Effects of biochar combined with N-fertilization on soil CO2 emissions, crop yields and relationships with soil properties. Polish Journal of Environmental Studies, 29(5), 1–13; doi: 10.15244/pjoes/11765610.15244/pjoes/117656 Search in Google Scholar

Hua, L., Wu, W., Liu, Y., McBride, M. B., Chen, Y. (2009). Reduction of nitrogen loss and Cu and Zn mobility during sludge composting with bamboo charcoal amendment. Environmental Science and Pollution Research, 16, 1–9.10.1007/s11356-008-0041-018751746 Search in Google Scholar

Chen, S. T., Huang, Y., Zou, J. W., Shen, Q. R., Hu, Z. H., Qin, Y. M., Chen, H. S, Pan, G. X. (2010). Modeling interannual variability of global soil respiration from climate and soil properties. Agricultural and Forest Meteorology, 150(4), 590–605.10.1016/j.agrformet.2010.02.004 Search in Google Scholar

Janssens, I. A., Freibauer, A., Ciais, P., Smith, P., Nabuurs, G. J., Folberth, G., Schlamadinger, B., Hutjes, R. W. A., Ceulemans, R., Schulze, E. D., Valentini, R., Dolman, H. (2003). Europe’s bio-sphere absorbs 7–12% of anthrogogenic carbon emissions. Science, 300, 1538–1542.10.1126/science.108359212764201 Search in Google Scholar

Juma, N. G. (1999). Pedosphere and its dynamics. Edmonton, Canada: Salman Production Ins. (335 p.). Search in Google Scholar

IPCC. (2007). Climate change: Synthesis report. Summary for Policymakers. Intergovernmental Panel on Climate Change. Search in Google Scholar

Kim, D. G., Vargas, R., Bond-Lamberty, B., Turetsky, M. (2012). Effects of soil rewetting and thawing on soil gas fluxes: a review of current literature and suggestions for future research. Biogeosciences, 9(7), 2459–2483.10.5194/bg-9-2459-2012 Search in Google Scholar

Lal, R. (2001). Soil carbon sequestration and climate change. Washington, DC: Senate Hearing, Science and Technical Sub-Committee. Search in Google Scholar

Lee, J., Six, J., King, A. P., Van Kessel, C., Rolston, D. (2006). Tillage and field scale controls on greenhouse gas emission. Journal of Environmental Quality, 35(1), 725.10.2134/jeq2005.033716585613 Search in Google Scholar

Lehmann, J., Rilling, M. C., Thies, J., Masiello, C. A., Hockaday, W. C., Crowley, D. (2011). Biochar effects on soil biota – A review. Soil Biology and Biochemistry, 43, 1812–1836.10.1016/j.soilbio.2011.04.022 Search in Google Scholar

Liang, B., Lehmann, J., Solomon, D., Kinyangi, J., Grossman, J., O‘Neill, B., Skjemstad, J. O., Thies, J., Luizao, F. J., Petersen, J., Neves, E. G. (2006). Black carbon increases cation exchange capacity in soils. Soil Science Society of America Journal, 70, 1719–1730.10.2136/sssaj2005.0383 Search in Google Scholar

Major, J., Steiner, C., DiTommaso, A., Falcǎo, N. P. S., Lenmann, J. (2005). Weed composition and cover after three years of soil fertility management in the central Brazilian Amazon: compost, fertilizer, manure and charcoal applications. Weed Biology and Management, 5, 69–76.10.1111/j.1445-6664.2005.00159.x Search in Google Scholar

McHenry, M. P. (2009). Agricultural bio-char production, renewable energy generation and farm carbon sequestration in Western Australia: Certainty, uncertainty and risk. Agriculture, Ecosystem & Environment, 129, 1–7.10.1016/j.agee.2008.08.006 Search in Google Scholar

Melillo, J. M., Morrisseau, S. (2002). Soil warming and carbon – cycle feedbacks to the climate system. Science, 298, 2173–2176.10.1126/science.107415312481133 Search in Google Scholar

Parkin, T. B., Kaspar, T. C. (2003). Temperature controls on diurnal carbon dioxide flux: Implication for estimating soil carbon loss. Soil Science Society of America Journal, 67, 1763–1772.10.2136/sssaj2003.1763 Search in Google Scholar

Pascual, J. A., Hernandez, T., Garcia, C., Ayusot, M. (1998). Carbon mineralization in an arid soil amended with organic wastes of varying degrees of stability. Communication in Soil Science and Plant Analysis, 29, 835.10.1080/00103629809369989 Search in Google Scholar

Rey, A., Pegoraro, E., Oyonatre, C., Were, A., Escribano, P., Raimundo, J. (2011). Impact of land degradation on soil respiration in a steppe (Stipa tenacissima L.) semiarid ecosystem in the SE of Spain. Soil Biology and Biochemistry, 43, 393–403.10.1016/j.soilbio.2010.11.007 Search in Google Scholar

Renner, R. (2007). Rethinking biochar. Environmental Science & Technology, 41, 5932–5933.10.1021/es072609717937262 Search in Google Scholar

Robertson, G. P., Grace, P. R. (2004). Greenhouse gas fluxes in tropical and temperate agriculture: The need for a full-cost accounting of global warming potentials. Environment, Development and Sustainability, 6, 51–63.10.1023/B:ENVI.0000003629.32997.9e Search in Google Scholar

Rondon, M., Ramirez, J. A., Lehmann, J. (2005). Charcoal additions reduce net emissions of greenhouse gases to the atmosphere. In Proceedings of the 3rd. USDA Symposium on Greenhouse Gases and Carbon Sequestration, Baltimore, USA (pp. 21–24, p. 208). Search in Google Scholar

Shen, Y., Zhu, L., Cheng, H., Yue, Sh., Li, Sh. (2017). Effects of biochar application on CO2 emissions from a cultivated soil under semiarid climate conditions in Northwest China. Sustainability, 9, 1482. Doi:10.3390/su908148210.3390/su9081482 Search in Google Scholar

Shindo, H. (1991). Elementary compostion, humus composition and decomposition in soil of charred grassland plants. Soil Science and Plant Nutrition, 37, 651–657.10.1080/00380768.1991.10416933 Search in Google Scholar

Sugihara, S., Funakawa, S., Kılasara, M., Kosakı, T. (2012). Effects of land management on CO2 flux and soil C stock in two Tanzanian croplands with contrasting soil texture. Soil Biology and Biochemistry, 46, 1–9.10.1016/j.soilbio.2011.10.013 Search in Google Scholar

Spokas, K. A., Reicosky, D. C. (2009). Impacts of sixteen different biochars on soil greenhouse gas production. Annals of Environmental Science and Toxicology, 3, 179–193. Search in Google Scholar

Steiner, C., Teixeira, W. G., Lehmann, J., Nehls, T., De Macêdo, J. L. V., Blum, W. E. H., Zech, W. (2007). Long term effects of manure, charcoal and mineral fertilization on crop production and fertility on a highly weathered Central Amazonian upland soil. Plant Soil, 291, 275–290.10.1007/s11104-007-9193-9 Search in Google Scholar

Wang, H., Lin, K., Hou, Z., Richardson, B., Gan, J. (2010). Sorption of the herbicide terbuthylazine in two New Zealand forest soils amended with biosolids and biochars. Journal of Soils and Sediments, 10, 283–289.10.1007/s11368-009-0111-z Search in Google Scholar

Woolf, D., Amonette, J. E., Street-Perrott, F. A., Lehmann, J., Joseph, S. (2010). Sustainable biochar to mitigate global climate change. Nature Communications, 1, 56. Doi:10.1038/ncomms105310.1038/ncomms1053296445720975722 Search in Google Scholar

Xu, X., Luo, X. (2012). Effect of wetting intensity on soil GHG fluxes and microbial biomass under a temperate forest floor during dry season. Geoderma, 170, 118–126.10.1016/j.geoderma.2011.11.016 Search in Google Scholar

Yanai, Y., Toyota. K., Okazaki, M. (2007). Effects of charcoal addition on N2O emissions from soil resulting from rewetting air-dried soil in short-term laboratory experiments. Soil Science and Plant Nutrition, 53, 181–188.10.1111/j.1747-0765.2007.00123.x Search in Google Scholar

Yufang, S., Lixia, Z., Hongyan, Ch., Shanchao, Y., Shinqing, L. (2017). Effects of biochar application on CO2 emissions from cultivated soil under semiarid climate conditions in Northwest China. Sustainability, 9, 1482. Doi: 10.3390/su908148210.3390/su9081482 Search in Google Scholar

Zahra, S. I., Abbas, F., Ishaq, W., Ibrahim, M., Hammad, H. M., Akram, B., Salik, M. R. (2016). Carbon sequestration potential of soils under maize production ın ırrigated agriculture of The Punjab province of Pakistan. Journal of Animal and Plant Science, 26(3), 706–715. Search in Google Scholar

Zhang, H., Lin, K., Wang, H., Gan, J. (2010). Effect of Pinus radiata derived biochars on soil sorption and desorption of phenanthrene. Environmental Pollution, 158, 2821–2825.10.1016/j.envpol.2010.06.02520638165 Search in Google Scholar

eISSN:
1338-5259
Język:
Angielski
Częstotliwość wydawania:
2 razy w roku
Dziedziny czasopisma:
Industrial Chemistry, Green and Sustainable Technology