Have a personal or library account? Click to login
Biotic and abiotic risks of soil biochar treatment for food safety and human health Cover

Biotic and abiotic risks of soil biochar treatment for food safety and human health

Open Access
|Nov 2020

References

  1. [1] Abujabhah, I. S., Bound, S. A., Doyle, R., Bowman, J. P., Effects of biochar and compost amendments on soil physico-chemical properties and the total community within a temperate agricultural soil. Applied Soil Ecology, 98. (2016) 243–253.10.1016/j.apsoil.2015.10.021
  2. [2] Béni, A., Soki, E., Lajtha, K., Fekete, I., An optimized HPLC method for soil fungal biomass determination and its application to a detritus manipulation study. Journal of Microbiological Methods, 103. (2014) 124–130.10.1016/j.mimet.2014.05.02224918988
  3. [3] Borowik, A., Wyszkowska, J., Remediation of soil contaminated with diesel oil. Journal of Elementology, 23. (2018) 767–788.10.5601/jelem.2018.23.1.1583
  4. [4] Brady, N. C., Weil, R. R., The nature and properties of soils. 14th ed. Pearson Prentice Hall, Upper Saddle River, NJ (2008).
  5. [5] Bridgwater, A. V., IEA Bioenergy Update 27: Biomass Pyrolysis. Biomass and Bioenergy, 31. (2007) 1–5.
  6. [6] Brown, R. A., Kercher, A. K., Nguyen, T. H., Nagle, D. C., Ball, W. P., Production and characterization of synthetic wood chars for use as surrogates for natural sorbents. Organic Geochemistry, 37. (2007) 321–333.10.1016/j.orggeochem.2005.10.008
  7. [7] Chan, K. Y., Van Zwieten, L., Meszaros, I., Downie, A., Joseph, S., Agronomic values of greenwaste biochar as a soil amendment. Soil Research, 45. (2008) 629–634.10.1071/SR07109
  8. [8] Cocozza, C., Baronti, S., Amendola, C., Vaccari, F. P., Lustrato, G., Lonardo, S. D., Fantasma, F., Tognetti, R., Scippa, G. S., The effects of biochar and its combination with compost on lettuce (Lactuca sativa L.) growth, soil properties, and soil microbial activity and abundance. International Journal of Agronomy (2017).10.1155/2017/3158207
  9. [9] Czimczik, C. I., Masiello, C. A., Controls on black carbon storage in soils. Global Biogeochemical Cycles, 21. (2007).10.1029/2006GB002798
  10. [10] Di Blasi, C., Modeling chemical and physical processes of wood and biomass pyrolysis. Progress in Energy and Combustion Science, 34. (2008) 47–90.10.1016/j.pecs.2006.12.001
  11. [11] Ding, Y., Liu, Y., Liu, S., Li, Z., Tan, X., Huang, X., Zheng, B., Biochar to improve soil fertility. A review. Agronomy for Sustainable Development, 36. (2016).10.1007/s13593-016-0372-z
  12. [12] Downie, A., Munroe, P., Crosky, A., Characteristics of biochar – Physical and structural properties. In: Lehmann J., Joseph S. (eds.), Biochar for environmental management: Science and technology. Earthscan, London (2009) 13–29.
  13. [13] Elmer, W., White, J. C., Pignatello, J. J., Impact of biochar addition to soil on the bioavailability of chemicals important in agriculture. Report. New Haven: University of Connecticut (2010).
  14. [14] Elmer, W. H., Pignatello, J. J., Effect of biochar amendments on mycorrhizal associations and Fusarium crown and root rot of asparagus in replant soils. Plant Disease, 95. (2011) 960–966.10.1094/PDIS-10-10-074130732119
  15. [15] Ennis, C. J., Evans, A. G., Islam, M., Ralebitso-Senior, T. K., Senior, E., Biochar: Carbon sequestration, land remediation, and impacts on soil microbiology. Critical Reviews in Environmental Science and Technology, 42. (2012) 2311–2364.
  16. [16] Fekete, I., Varga, Cs., Nagy, P. T, Tóth, J. A., Kotroczó, Zs., Effect of detritus input on some soil nutrients concentrations in a Central European deciduous forest. In: Rıdvan, K., Coşkun, G. (eds.), Book of Proceedings: 9thInternational Soil Science Congress on “The Soul of Soil and Civilization”, 14–16 October 2014, Side, Antalya/Turkey (2014) 461–467.
  17. [17] Fischer, D., Glaser, B., Synergisms between compost and biochar for sustainable soil amelioration. In: Kumar, S., Bharti, A. (eds.), Management of organic waste. IntechOpen (2012) 167–198.
  18. [18] Glaser, B., Haumaier, L., Guggenberger, G., Zech, W., Black carbon in soils: The use of benzenecarboxylic acids as specific markers. Organic Geochemistry, 29. (1998) 811–819.
  19. [19] Gorovtsov, A. V., Minkina, T. M., Mandzhieva, S. S., Perelomov, L. V., Soja, G., Zamulina, I. V., Yao, J., The mechanisms of biochar interactions with microorganisms in soil. Environmental Geochemistry and Health, 1–24. (2019).10.1007/s10653-019-00412-5
  20. [20] Hardy, B., Sleutel, S., Dufey, J. E., Cornelis, J. T., The long-term effect of biochar on soil microbial abundance, activity and community structure is overwritten by land management. Frontiers in Environmental Science, 7. 110. (2019).10.3389/fenvs.2019.00110
  21. [21] Kaal, J., Brodowski, S., Baldock, J. A., Nierop, K. G., Cortizas, A. M., Characterisation of aged black carbon using pyrolysis-GC/MS, thermally assisted hydrolysis and methylation (THM), direct and cross-polarisation 13C nuclear magnetic resonance (DP/CP NMR) and the benzenepolycarboxylic acid (BPCA) method. Organic Geochemistry, 39. (2008) 1415–1426.10.1016/j.orggeochem.2008.06.011
  22. [22] Kim, E. J., Oh, J. E., Chang, Y. S., Effects of forest fire on the level and distribution of PCDD/Fs and PAHs in soil. Science of the Total Environment, 311. (2003) 177–189.10.1016/S0048-9697(03)00095-0
  23. [23] Kocsis, T., Biró, B., Mátrai, G., Ulmer, Á., Kotroczó, Zs., Effect of plant-coal biochar on soil organic matter and soil nutrient content. Kertgazdaság [Horticulture] 48. (2016) 89–96. (in Hungarian with English abstract).
  24. [24] Kocsis, T., Biró, B., Ulmer, Á., Szántó, M., Kotroczó, Zs., Time-lapse effect of ancient plant coal biochar on some soil agrochemical parameters and soil characteristics. Environmental Science and Pollution Research, 25. (2018) 990–999.10.1007/s11356-017-8707-028299568
  25. [25] Lajtha, K., Bowden, R. D., Crow, S., Fekete, I., Kotroczó, Zs., Plante, A., Simpson, M., Nadelhoffer, K., The Detrital Input and Removal Treatment (DIRT) network. Reference Module in Earth Systems and Environmental Sciences (2017).10.1016/B978-0-12-409548-9.09774-8
  26. [26] Kotroczó, Zs., Juhos, K., Biró, B., Kocsis, T., Pabar, S. A., Varga, C., Fekete, I., Effect of detritus manipulation on different organic matter decompositions in temperate deciduous forest soils. Forests, 11. (2020) 675.10.3390/f11060675
  27. [27] Lehmann, J., Kern, D. C., German, L. A., McCann, J., Martins, G. C., Moreira, A., Soil fertility and production potential. In: Lehmann, J., Kern, D. C., Glaser, B., Woods, W. I. (eds.), Amazonian dark earths: Origin, properties, management. Kluwer Academic Publishers, Dordrecht (2003) 105–124.
  28. [28] Lehmann, J., Rillig, M. C., Thies, J., Masiello, C. A., Hockaday, W. C., Crowley, D., Biochar effects on soil biota – A review. Soil Biology and Biochemistry, 43. (2011) 1812–1836.10.1016/j.soilbio.2011.04.022
  29. [29] Matsubara, Y. I., Hasegawa, N., Fukui, H., Incidence of Fusarium root rot in asparagus seedlings infected with arbuscular mycorrhizal fungus as affected by several soil amendments. Journal of the Japanese Society of Horticultural Science, 71. (2002) 370–374.10.2503/jjshs.71.370
  30. [30] Nerome, M. K., Toyota, T. M. D., Islam, T., Nishijima, T., Matsuoka, K. S., Yamaguchi, Y., Suppression of bacterial wilt of tomato by incorporation of municipal biowaste charcoal into soil. Soil Microorganisms, 59. (2005) 9–14.
  31. [31] Ogawa, M., Okimori, Y., Pioneering works in biochar research, Japan. Soil Research, 48. (2010) 489–500.10.1071/SR10006
  32. [32] Organisation for Economic Co-Operation and Development. Test No. 312: Leaching in soil columns. OECD Publishing (2004).
  33. [33] Rajapaksha, A. U., Chen, S. S., Tsang, D. C., Zhang, M., Vithanage, M., Mandal, S., Ok, Y. S., Engineered/designer biochar for contaminant removal/immobilization from soil and water: Potential and implication of biochar modification. Chemosphere, 148. (2016) 276–291.
  34. [34] Ré-Poppi, N., Santiago-Silva, M., Identification of polycyclic aromatic hydrocarbons and methoxylated phenols in wood smoke emitted during production of charcoal. Chromatographia, 55. (2002) 475–481.10.1007/BF02492280
  35. [35] Shomana, T., Botha, D. E., Agachi, P. S. The water retention properties of biochar derived from broiler poultry litter as applied to the Botswana soil. DRC Sustainable Future, 1. (2020) 67–72.10.37281/DRCSF/1.1.9
  36. [36] Strachel, R., Wyszkowska, J., Baćmaga, M., An evaluation of the effectiveness of sorbents in the remediation of soil contaminated with zinc. Water, Air, & Soil Pollution, 229. (2018) 235.10.1007/s11270-018-3882-2602885430046198
  37. [37] Thies, J. E., Rillig, M. C., Characteristics of biochar: Biological properties. In: Lehmann J., Joseph S. (eds.), Biochar for environmental management. Earthscan Publications Ltd (2009) 85–105.
  38. [38] Van Zwieten. L., Kimber. S., Downie. A., Morris. S., Petty. S., Rust, J., Chan, K. Y., A glasshouse study on the interaction of low mineral ash biochar with nitrogen in a sandy soil. Australian Journal of Soil Research, 48. (2010a) 569–576.10.1071/SR10003
  39. [39] Van Zwieten, L., Kimber, S., Morris, S., Chan, K. Y., Downie, A., Rust, J., Joseph, S., Cowie, A., Effects of biochar from slow pyrolysis of papermill waste on agronomic performance and soil fertility. Plant and Soil, 327. (2010b) 235–246.10.1007/s11104-009-0050-x
  40. [40] Wang, X., Zhao, F., Zhang, G., Zhang, Y., Yang, L., Vermicompost improves tomato yield and quality and the biochemical properties of soils with different tomato planting history in a greenhouse study. Frontiers in Plant Science, 8. (2017) 1978.10.3389/fpls.2017.01978570235429209343
  41. [41] Warnock, D. D., Lehmann, J., Kuyper, T. W., Rillig, M. C., Mycorrhizal responses to biochar in soil – Concepts and mechanisms. Plant and Soil, 300. (2007) 9–20.10.1007/s11104-007-9391-5
  42. [42] Włóka, D., Kacprzak, M., Grobelak, A., Grosser, A., Napora, A., The impact of PAHs contamination on the physicochemical properties and microbiological activity of industrial soils. Polycyclic Aromatic Compounds, 35. (2015) 372–386.10.1080/10406638.2014.918887
  43. [43] Yang, Y. N., Sheng, G. Y., Huang, M. S., Bioavailability of diuron in soil containing wheat-straw-derived char. Science of the Total Environment, 354. (2006) 170–178.10.1016/j.scitotenv.2005.01.02616398993
  44. [44] Zhang, A., Cui, L., Pa, G., Li, L., Hussain, Q., Zhang, X., Zheng, J., Crowley, D., Effect of biochar amendment on yield and methane and nitrous oxide emissions from a rice paddy from Tai Lake plain, China. Agriculture, Ecosystems and Environment, 139. (2010) 469e–475.10.1016/j.agee.2010.09.003
Language: English
Page range: 69 - 84
Published on: Nov 5, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2020 T. Kocsis, S. A. Pabar, B. Ferschl, Zs. Kotroczó, Cs. Mohási-Farkas, B. Biró, published by Sapientia Hungarian University of Transylvania
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.