Ammonia and phosphorus removal from agricultural runoff using cash crop waste-derived biochars
Alisa Salimova, Jian’e Zuo, Fenglin Liu, Yajiao Wang, Sike Wang, Konstantin Verichev
Ammonia and phosphorus removal from agricultural runoff using cash crop waste-derived biochars
• Orange tree residuals biochar had a better ability to adsorb ammonia.
• Modified tea tree residuals biochar had a stronger ability to remove phosphorus.
• Partially-modified biochar could remove ammonia and phosphorus at the same time.
• The real runoff experiment showed an ammonia nitrogen removal rate of about 80%.
• The removal rate of total phosphorus in real runoff experiment was about 95%.
Adsorption of biochars (BC) produced from cash crop residuals is an economical and practical technology for removing nutrients from agricultural runoff. In this study, BC made of orange tree trunks and tea tree twigs from the Laoguanhe Basin were produced and modified by aluminum chloride (Al-modified) and ferric sulfate solutions (Fe-modified) under various pyrolysis temperatures (200°C–600°C) and residence times (2–5 h). All produced and modified BC were further analyzed for their abilities to adsorb ammonia and phosphorus with initial concentrations of 10–40 mg/L and 4–12 mg/L, respectively. Fe-modified Tea Tree BC 2h/400°C showed the highest phosphorus adsorption capacity of 0.56 mg/g. Al-modified Orange Tree BC 3h/500°C showed the best performance for ammonia removal with an adsorption capacity of 1.72 mg/g. FTIR characterization showed that P = O bonds were formed after the adsorption of phosphorus by modified BC, N-H bonds were formed after ammonia adsorption. XPS analysis revealed that the key process of ammonia adsorption was the ion exchange between K+ and NH4+. Phosphorus adsorption was related to oxidation and interaction between PO43– and Fe3+. According to XRD results, ammonia was found in the form of potassium amide, while phosphorus was found in the form of iron hydrogen phosphates. The sorption isotherms showed that the Freundlich equation fits better for phosphorus adsorption, while the Langmuir equation fits better for ammonia adsorption. The simulated runoff infiltration experiment showed that 97.3% of ammonia was removed by Al-modified Orange tree BC 3h/500°C, and 92.9% of phosphorus was removed by Fe-modified Tea tree BC 2h/400°C.
Biochar / Adsorption / Ammonia removal / Phosphorus removal / Agricultural runoff
[1] |
Ansari A, Gill S S (2011). Eutrophication: Causes, Consequences, and Control. London, New York: Springer Dordrecht Heidelberg, 262
|
[2] |
Ashoori N, Teixido M, Spahr S, Le Fevre G H, Sedlak D L, Luthy R G (2019). Evaluation of pilot-scale biochar-amended woodchip bioreactors to remove nitrate, metals, and trace organic contaminants from urban stormwater runoff. Water Research, 154: 1–11
CrossRef
Google scholar
|
[3] |
Barker P S, Dold P L (1996). Denitrification behaviour in biological excess phosphorus removal activated sludge systems. Water Research, 30(4): 769–780
CrossRef
Google scholar
|
[4] |
Carpenter S R, Caraco N F, Correll D L, Howarth R W, Sharpley A N, Smith V H (1998). Nonpoint pollution of surface waters with phosphorus and nitrogen. Ecological Applications, 8(3): 559–568
CrossRef
Google scholar
|
[5] |
Chen B, Chen Z, Lv S (2011). A novel magnetic biochar efficiently sorbs organic pollutants and phosphate. Bioresource Technology, 102(2): 716–723
CrossRef
Google scholar
|
[6] |
Chi T, Zuo J, Liu F (2017). Performance and mechanism for cadmium and lead adsorption from water and soil by corn straw biochar. Frontiers of Environmental Science & Engineering, 11(2): 15
CrossRef
Google scholar
|
[7] |
Chiou C T (2002). Fundamentals of the Adsorption. In: Partition and Adsorption of Organic Contaminants in Environmental Systems. Theory Wiley Online Books,39–52
|
[8] |
Conrad S H, Wilson J L, Mason W R, Peplinski W J (1992). Visualization of residual organic liquid trapped in aquifers. Water Resources Research, 28(2): 467–478
CrossRef
Google scholar
|
[9] |
Coleman B S L, Easton Z M, Bock E M (2019). Biochar fails to enhance nutrient removal in woodchip bioreactor columns following saturation. Journal of Environmental Management, 232: 490–498
CrossRef
Google scholar
|
[10] |
Doydora S A, Cabrera M L, Das K C, Gaskin J W, Sonon L S, Miller W P (2011). Release of nitrogen and phosphorus from poultry litter amended with acidified biochar. International Journal of Environmental Research and Public Health, 8(5): 1491–1502
CrossRef
Google scholar
|
[11] |
Fafchamps M (1992). Cash crop production, food price volatility, and rural market integration in the third world. American Journal of Agricultural Economics, 74(1): 90–99
CrossRef
Google scholar
|
[12] |
Inyang M, Gao B, Yao Y, Xue Y, Zimmerman A R, Pullammanappallil P, Cao X (2012). Removal of heavy metals from aqueous solution by biochars derived from anaerobically digested biomass. Bioresource Technology, 110: 50–56
CrossRef
Google scholar
|
[13] |
Lehmann J, Stephen J (2009). Biochar for Environmental Management: Science and Technology. An Introduction. 1st ed. Buyer: Earthscan Publications Ltd.,1–12
|
[14] |
Liu F, Zuo J, Chi T, Wang P, Yang B (2015). Removing phosphorus from aqueous solutions by using iron-modified corn straw biochar. Frontiers of Environmental Science & Engineering, 9(6): 1066–1075
CrossRef
Google scholar
|
[15] |
Liu Q, Wu L, Gorring M, Deng Y (2019). Aluminum-impregnated biochar for adsorption of Arsenic(V) in urban stormwater runoff. Journal of Environmental Engineering, 145(4): 04019008
CrossRef
Google scholar
|
[16] |
Piscitelli L, Rivier P A, Mondelli D, Miano T, Joner E J (2018). Assessment of addition of biochar to filtering mixtures for potential water pollutant removal. Environmental Science and Pollution Research International, 25(3): 2167–2174
CrossRef
Google scholar
|
[17] |
Reimer L (1998). Scanning Electron Microscopy: Physics of Image Formation and Microanalysis. 2nd ed. Berlin: Springer-Verlag Heidelberg, 529
|
[18] |
Sarkhot D V, Ghezzehei T A, Berhe A A (2013). Effectiveness of biochar for sorption of ammonium and phosphate from dairy effluent. Journal of Environmental Quality, 42(5): 1545–1554
CrossRef
Google scholar
|
[19] |
Scheidegger A M, Sparks D L (1996). A critical assessment of sorption-desorption mechanisms at the soil mineral/water interface. Soil Science, 161(12): 813–831
CrossRef
Google scholar
|
[20] |
Singhs B, Camps-Arbestain M, Lehmann J (2017). Biochar: A Guide to Analytical Methods. Boca Raton: CRC Press, 320
|
[21] |
Srinivasan P, Sarmah A K, Smernik R, Das O, Farid M, Gao W (2015). A feasibility study of agricultural and sewage biomass as biochar, bioenergy, and biocomposite feedstock: Production, characterization, and potential applications. Science of the Total Environment, 512–513: 495–505
CrossRef
Google scholar
|
[22] |
Sun H, Hockaday W C, Masiello C A, Zygourakis K (2012). Multiple controls on the chemical and physical structure of biochars. Industrial & Engineering Chemistry Research, 51(9): 3587–3597
CrossRef
Google scholar
|
[23] |
Sun L, Xu M, Jia J, Li C (2016). Risk identification of water pollution sources in water source areas of middle route of the South-to-North Water Diversion Project. International Journal of Environmental Sciences and Development, 7(8): 576–580
CrossRef
Google scholar
|
[24] |
Tang L, Yu J, Pang Y, Zeng G, Deng Y, Wang J, Ren X, Ye S, Peng B, Feng H (2018). Sustainable, efficient adsorbent: Alkali-acid modified magnetic biochar derived from sewage sludge for aqueous organic contaminant removal. Chemical Engineering Journal, 336: 160–169
CrossRef
Google scholar
|
[25] |
Wang G, Zuo H, Wei J, Huang Y (2010). Identification of key source areas of agricultural non-point source pollution in the Laoyu River Basin in the water source area of the middle route of the South-to-North Water Transfer Project. Earth Science Frontiers (China University of Geosciences) 17(6): 13 (in Chinese)
|
[26] |
Wu J (1994). Techniques and Applications of Modern FTIR Spectroscopy. Beijing: Scientific and Technical Documents Publishing House (in Chinese)
|
[27] |
Xie T, Reddy K R, Wang C, Yargicoglu E, Spokas K (2015). Characteristics and applications of biochar for environmental remediation: A review. Critical Reviews in Environmental Science and Technology, 45(9): 939–969
CrossRef
Google scholar
|
[28] |
Xu C, Chunru H, Taylor D C (1992). Sustainable agricultural development in China. World Development, 20(8): 1127–1144
CrossRef
Google scholar
|
[29] |
Yang X, Wu X, Hao H, He Z (2008). Mechanisms and assessment of water eutrophication. Journal of Zhejiang University. Science. B., 9(3): 197–209
CrossRef
Google scholar
|
[30] |
Yao Y, Gao B, Inyang M, Zimmerman A R, Cao X, Pullammanappallil P, Yang L (2011). Biochar derived from anaerobically digested sugar beet tailings: Characterization and phosphate removal potential. Bioresource Technology, 102(10): 6273–6278
CrossRef
Google scholar
|
[31] |
Yu J, Tang L, Pang Y, Zeng G, Wang J, Deng Y, Liu Y, Feng H, Chen S, Ren X (2019). Magnetic nitrogen-doped sludge-derived biochar catalysts for persulfate activation: Internal electron transfer mechanism. Chemical Engineering Journal, 364: 146–159
CrossRef
Google scholar
|
[32] |
Zhang J, Lü F, Zhang H, Shao L, Chen D, He P (2015). Multiscale visualization of the structural and characteristic changes of sewage sludge biochar oriented towards potential agronomic and environmental implication. Scientific Reports, 5(1): 9406
CrossRef
Google scholar
|
[33] |
Zhang L, Scholz M, MustafaA, Harrington R (2008). Assessment of the nutrient removal performance in integrated constructed wetlands with the self-organizing map. Water Research, 42(13): 3519–3527
CrossRef
Google scholar
|
[34] |
Zhang Y, Li Z, Mahmood I B (2014). Recovery of NH4+ by corn cob produced biochars and its potential application as a soil conditioner. Frontiers of Environmental Science & Engineering, 8(6): 825–834
CrossRef
Google scholar
|
[35] |
Zheng T, Sun Z, Yang X, Holmgren A (2012). Sorption of phosphate onto mesoporous-alumina studied with in-situ ATR-FTIR spectroscopy. Chemistry Central Journal, 6(26): 1–10
|
/
〈 | 〉 |