424
Views
8
CrossRef citations to date
0
Altmetric
Research Article

Effects of long-term phosphorus fertilizer applications on soil carbon and CO2 flux

&
Pages 2270-2279 | Received 10 Mar 2020, Accepted 15 Jun 2020, Published online: 29 Sep 2020

References

  • Ahirwal, J., and S. K. Maiti. 2018. Assessment of soil carbon pool, carbon sequestration and soil CO2 flux in unreclaimed and reclaimed coal mine spoils. Environmental Earth Sciences 77 (1):9. doi:10.1007/s12665-017-7185-5.
  • Benbi, D. K., and S. P. S. Brar. 1994. Influence of soil organic carbon on the interpretation of soil test P for wheat grown on alkaline soils. Fertilizer Research 37 (1):35–41. doi:10.1007/BF00750671.
  • Bolan, N. S., L. D. Currie, and S. Baskaran. 1996. Assessment of the influence of phosphate fertilizers on the microbial activity of pasture soils. Biology and Fertility of Soils 21 (4):284–92. doi:10.1007/BF00334905.
  • Bortolon, E. S. O., J. Mielniczuk, C. G. Tornquist, L. Bortolon, and F. Lopes. 2014. Carbon balance at the regional scale in Southern Brazil estimated with the century model. In Soil carbon, 437–45. Cham: Springer. doi:10.1007/978-3-319-04084-4_43.
  • Davidson, E. A., and I. A. Janssens. 2006. Temperature sensitivity of soil carbon decomposition and feedbacks to climate change. Nature 440 (7081):165–73. doi:10.1038/nature04514.
  • Dhadli, H. S., B. S. Brar, and T. A. Black. 2015. Influence of crop growth and weather variables on soil CO2 emissions in a maize-wheat cropping system. Agricultural Research Journal 52 (3):28–34. doi:10.5958/2395-146X.2015.00032.0.
  • Ericsson, T. 1995. Growth and shoot: Root ratio of seedlings in relation to nutrient availability. In Nutrient uptake and cycling in forest ecosystems, 205–14. Dordrecht: Springer. doi:10.1007/BF00029330.
  • Fisk, M., S. Santangelo, and K. Minick. 2015. Carbon mineralization is promoted by phosphorus and reduced by nitrogen addition in the organic horizon of northern hardwood forests. Soil Biology & Biochemistry 81:212–18. doi:10.1016/j.soilbio.2014.11.022.
  • Hartman, W. H., and C. J. Richardson. 2013. Differential nutrient limitation of soil microbial biomass and metabolic quotients (qCO2): Is there a biological stoichiometry of soil microbes? PloS One 8 (3):e57127. doi:10.1371/journal.pone.0057127.
  • Ibrikci, H., A. C. Ulger, K. Korkmaz, A. Oktem, G. Buyuk, J. Ryan, B. Amar, O. Konuskan, E. Karnez, and G. Ozgenturk. 2009. Genotypic responses of corn to phosphorus fertilizer rates in calcareous soils. Communications in Soil Science and Plant Analysis 40 (9–10):1418–35. doi:10.1080/00103620902818070.
  • Ibrikci, H., J. Ryan, A. C. Ulger, G. Buyuk, B. Cakir, K. Korkmaz, E. Karnez, G. Ozgenturk, and O. Konuskan. 2005. Maintenance of phosphorus fertilizer and residual phosphorus effect on corn production. Nutrient Cycling in Agroecosystems 72 (3):279–86. doi:10.1007/s10705-005-3367-8.
  • Kononova, M. M. (1966). Soil organic matter its nature, its role in formation and in soil fertility, 377–81. 2nd rev ed. Elsevier.
  • Kumar, A., M. Shahbaz, E. Blagodatskaya, Y. Kuzyakov, and J. Pausch. 2018. Maize phenology alters the distribution of enzyme activities in soil: Field estimates. Applied Soil Ecology 125:233–39. doi:10.1016/j.apsoil.2018.02.001.
  • Kuzyakov, Y. 2010. Priming effects: Interactions between living and dead organic matter. Soil Biology & Biochemistry 42 (9):1363–71. doi:10.1016/j.soilbio.2010.04.003.
  • Lal, R. 2014. Managing terrestrial carbon in a changing climate. In Soil security for ecosystem management, 1–18. Cham: Springer. doi:10.1007/978-3-319-00699-4_1.
  • Lal, R. 2016. Beyond COP 21: Potential and challenges of the “4 per Thousand” initiative. Journal of Soil and Water Conservation 71 (1):20A–25A. doi:10.2489/jswc.71.1.20A.
  • Lange, M., N. Eisenhauer, C. A. Sierra, H. Bessler, C. Engels, R. I. Griffiths, P. G. Mellado-Vázquez, A. A. Malik, J. Roy, and S. Scheu. 2015. Plant diversity increases soil microbial activity and soil carbon storage. Nature Communications 6 (1):1–8.
  • Liu, L., T. Zhang, F. S. Gilliam, P. Gundersen, W. Zhang, H. Chen, and J. Mo. 2013. Interactive effects of nitrogen and phosphorus on soil microbial communities in a tropical forest. PloS One 8 (4):e61188. doi:10.1371/journal.pone.0061188.
  • Marschner, H., E. A. Kirkby, and I. Cakmak. 1996. Effect of mineral nutritional status on shoot—root partitioning of photoassimilates and cycling of mineral nutrients. Journal of Experimental Botany 47:1255–63. doi:10.1093/jxb/47.Special_Issue.1255.
  • Montgomery, D. R., D. Zabowski, F. C. Ugolini, R. O. Hallberg, and H. Spaltenstein. 2000. Soils, watershed processes, and marine. Earth System Science: From Biogeochemical Cycles to Global Changes 72:159.
  • Mori, T., N. Imai, D. Yokoyama, M. Mukai, and K. Kitayama. 2017. Effects of selective logging and application of phosphorus and nitrogen on fluxes of CO₂, CH₄ and N₂O in lowland tropical rainforests of Borneo. Journal of Tropical Forest Science 29 (2):248–56.
  • Motschenbacher, J. M., K. R. Brye, M. M. Anders, E. E. Gbur, N. A. Slaton, and M. A. Evans-White. 2015. Daily soil surface CO2 flux during non-flooded periods in flood-irrigated rice rotations. Agronomy for Sustainable Development 35 (2):771–82. doi:10.1007/s13593-014-0278-6.
  • Mukhopadhyay, S., and S. K. Maiti. 2014. Soil CO2 flux in grassland, afforested land and reclaimed coalmine overburden dumps: A case study. Land Degradation & Development 25 (3):216–27. doi:10.1002/ldr.1161.
  • Oertel, C., J. Matschullat, K. Zurba, F. Zimmermann, and S. Erasmi. 2016. Greenhouse gas emissions from soils—A review. Geochemistry 76 (3):327–52. doi:10.1016/j.chemer.2016.04.002.
  • Olson, K. R. 2013. Soil organic carbon sequestration, storage, retention and loss in US croplands: Issues paper for protocol development. Geoderma 195:201–06. doi:10.1016/j.geoderma.2012.12.004.
  • Ortaş, I. 2017a. Degradation: Biological. In Encyclopedia of soil science, ed. R. Lal, vols. I–III, 3rd ed., 553–57. CRC Press. doi:10.1081/e-ess3-120053853.
  • Ortaş, I. 2017b. Mycorrhizae: Soil quality. In Encyclopedia of soil science, ed. R. Lal, vols. I–III, 3rd ed., 1505–10. CRC Press. doi:10.1081/e-ess3-120053283.
  • Ortas, I., and R. Lal. 2012. Long-term phosphorus application impacts on aggregate-associated carbon and nitrogen sequestration in a vertisol in the Mediterranean Turkey. Soil Science 177 (4):241–50. doi:10.1097/SS.0b013e318245d11c.
  • Poeplau, C., M. Bolinder, H. Kirchmann, and K. Thomas. 2016. Phosphorus fertilisation under nitrogen limitation can deplete soil carbon stocks: Evidence from Swedish meta-replicated long-term field experiments. Biogeosciences 13 (4):1119–27. doi:10.5194/bg-13-1119-2016.
  • Powlson, D. S., A. Bhogal, B. J. Chambers, K. Coleman, A. J. Macdonald, K. W. T. Goulding, and A. P. Whitmore. 2012. The potential to increase soil carbon stocks through reduced tillage or organic material additions in England and Wales: A case study. Agriculture, Ecosystems & Environment 146 (1):23–33. doi:10.1016/j.agee.2011.10.004.
  • Radicetti, E., O. Adewale Osipitan, A. R. S. Langeroodi, S. Marinari, and R. Mancinelli. 2019. CO2 flux and C balance due to the replacement of bare soil with agro-ecological service crops in mediterranean environment. Agriculture 9 (4):71. doi:10.3390/agriculture9040071.
  • Raich, J. W., and W. H. Schlesinger. 1992. The global carbon dioxide flux in soil respiration and its relationship to vegetation and climate. Tellus B 44 (2):81–99. doi:10.3402/tellusb.v44i2.15428.
  • Rengel, Z. 2007. The role of crop residues in improving soil fertility. In Nutrient cycling in terrestrial ecosystems, 183–214. Berlin, Heidelberg: Springer. doi:10.1007/978-3-540-68027-7_7.
  • Smith, P., K. W. Goulding, K. A. Smith, D. S. Powlson, J. U. Smith, P. Falloon, and K. Coleman. 2001. Enhancing the carbon sink in European agricultural soils: Including trace gas fluxes in estimates of carbon mitigation potential. Nutrient Cycling in Agroecosystems 60 (1–3):237–52. doi:10.1023/A:1012617517839.
  • Song, C., D. Liu, Y. Song, G. Yang, Z. Wan, L. Yingchen, and X. Xu. 2011. Effect of exogenous phosphorus addition on soil respiration in Calamagrostis angustifolia freshwater marshes of Northeast China. Atmospheric Environment 45 (7):1402–06. doi:10.1016/j.atmosenv.2010.12.030.
  • Souza, G. P. D., C. C. D. Figueiredo, and D. M. G. D. Sousa. 2016. Relationships between labile soil organic carbon fractions under different soil management systems. Scientia Agricola 73 (6):535–42. doi:10.1590/0103-9016-2015-0047.
  • Wang, D. X., Y. H. Gao, P. Wang, and X. Y. Zeng. 2016. Responses of CO2 and N2O emissions to carbon and phosphorus additions in two contrasting alpine meadow soils on the Qinghai-Tibetan Plateau. Fresenius Environmental Bulletin 25 (10):4401–44408.
  • Weil, R. R. 2004. Significance of soil organic matter to soil quality and health. In Soil organic matter in sustainable agriculture, 1–43. CRC Press. doi:10.1201/9780203496374.ch1.
  • Wenlong, G., Y. Hao, L. Shenggong, and K. Liang. 2017. Responses of soil CO2, CH4 and N2O fluxes to N, P, and acid additions in mixed forest in subtropical China. Journal of Resources and Ecology 8 (2):154–65. doi:10.5814/j..1674-764X.2017.02.006.
  • Zhang, W. J., X. J. Wang, M. G. Xu, S. M. Huang, H. Liu, and C. Peng. 2010. Soil organic carbon dynamics under long-term fertilizations in arable land of northern China. Biogeosciences 7:2. doi:10.5194/bg-7-409-2010.
  • Zimmermann, J., M. Dondini, and M. B. Jones. 2013. Assessing the impacts of the establishment of Miscanthus on soil organic carbon on two contrasting land‐use types in Ireland. European Journal of Soil Science 64 (6):747–56. doi:10.1111/ejss.12087.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.