Size and composition of colloidal phosphorus across agricultural soils amended with biochar, manure and biogas slurry

Carbon Research - Tập 2 - Trang 1-16 - 2023
Kamel Mohamed Eltohamy1,2, Paul J. Milham3, Mostafa Gouda4, Daniel Menezes-Blackburn5, Sangar Khan1, Boyi Liu1, Junwei Jin1, Ye Ye6, Xinqiang Liang1
1Key Laboratory of Environment Remediation and Ecological Health, Ministry of Education, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou, China
2Department of Water Relations & Field Irrigation, National Research Centre, Dokki, Egypt
3Hawkesbury Institute for the Environment, University of Western Sydney, Penrith, Australia
4Department of Nutrition & Food Science, National Research Centre, Dokki, Egypt
5Department of Soils, Water and Agricultural Engineering, Sultan Qaboos University, Muscat, Sultanate of Oman
6Sino-Japan Friendship Centre for Environmental Protection, Beijing, China

Tóm tắt

The long-term application of organic amendments like manure, biochar and biogas slurry can increase phosphorus (P) levels in agricultural soils; however, at present, it's not clear how this affects the P association with different mobile water-dispersible colloidal particles (Pcoll). Thus, this study aimed to assess the effects of the long-term application of different organic amendments on the abundance, size and compositional characteristics of Pcoll. For this purpose, a total of 12 soils amended with the above three organic amendments were sampled from the Zhejiang Province, China, and Pcoll were fractionated into nano-sized (NC; 1–20 nm), fine-sized (FC; 20–220 nm), and medium-sized (MC; 220–450 nm) by a combination of differential centrifugation and ultrafiltration steps. These three Pcoll forms together accounted for 74 ± 14% of the total soil solution dissolved P content, indicating that Pcoll release was a key process in the overland P transport from these soils. Soils treated with biochar showed lower Pcoll contents than those treated with manure or slurry alone; this effect should be further explored in a controlled inductive research approach. Compositional analysis showed that inorganic P was the predominant Pcoll form in the NC (54 ± 20%) and FC (63 ± 28%) fractions, but not in the MC (42 ± 26%) fraction. Among the three fractions, the organic carbon (OC)–calcium (Ca) complex was the major carrier of NC-bound Pcoll, MC-bound Pcoll was better correlated with OC–manganese/iron/aluminium colloids than with OC–Ca colloids, and both of these phenomena co-occurred in the FC fraction. The current study provides novel insights into the impact of various carbon amendments on the propensity for P loss associated with different soil mobile colloidal fractions, and will therefore, inform future agronomic and environmental-related policies and studies. • Colloidal P release is a key process in the overland P transport from organic fertilised soils. • Biochar remediates soil colloidal P content by absorbing it and improving soil aggregation. • The composition of colloidal P in different size fractions in these soils is remarkably different. • Organic colloidal associations with Ca were the major driver of nano-sized colloidal P content. • Medium-size colloidal P was associated with organic colloids containing Mn/Fe/Al rather than Ca.

Tài liệu tham khảo

Adediran GA, Lundberg D, Almkvist G, Pradas del Real AE, Klysubun W, Hillier S, Gustafsson JP, Simonsson M (2021) Micro and nano sized particles in leachates from agricultural soils: Phosphorus and sulfur speciation by X-ray micro-spectroscopy. Water Res 189:116585 Baalousha M, Kammer FVD, Motelica-Heino M, Le Coustumer P (2005) 3D characterization of natural colloids by FlFFF-MALLS-TEM. Anal Bioanal Chem 383:549–556 Baken S, Moens C, van der Grift B, Smolders E (2016a) Phosphate binding by natural iron-rich colloids in streams. Water Res 98:326–333 Baken S, Regelink IC, Comans RNJ, Smolders E, Koopmans GF (2016b) Iron-rich colloids as carriers of phosphorus in streams: A field-flow fractionation study. Water Res 99:83–90 Chen A, Arai Y (2020) Current uncertainties in assessing the colloidal phosphorus loss from soil. Elsevier Inc., Das PP, Singh KRB, Nagpure G, Mansoori A, Singh RP, Ghazi IA, Kumar A, Singh J (2022) Plant-soil-microbes: A tripartite interaction for nutrient acquisition and better plant growth for sustainable agricultural practices. Environ Res 214:113821 Eltohamy KM, Khan S, He S, Li J, Liu C, Liang X (2023a) Prediction of nano, fine, and medium colloidal phosphorus in agricultural soils with machine learning. Environ Res 220:115222 Eltohamy KM, Li J, Gouda M, Menezes-Blackburn D, Milham PJ, Khan S, Li F, Liu C, Xu J, Liang X (2023b) Nano and fine colloids suspended in the soil solution regulate phosphorus desorption and lability in organic fertiliser-amended soils. Sci Total Environ 858:160195 Eltohamy KM, Liu C, Khan S, Niyungeko C, Jin Y, Hosseini SH, Li F, Liang X (2021) An internet-based smart irrigation approach for limiting phosphorus release from organic fertilizer-amended paddy soil. J Clean Prod 293:126254 Fresne M, Jordan P, Fenton O, Mellander PE, Daly K (2021) Soil chemical and fertilizer influences on soluble and medium-sized colloidal phosphorus in agricultural soils. Sci Total Environ 754:142112 García-Gaines RA, Frankenstein S (2015) USCS and the USDA Soil Classification System: Development of a mapping scheme. US Army Eng Res Dev Center, Cold Reg Res Eng Lab Gottselig N, Nischwitz V, Meyn T, Amelung W, Bol R, Halle C, Vereecken H, Siemens J, Klumpp E (2017) Phosphorus Binding to Nanoparticles and Colloids in Forest Stream Waters. Vadose Zo J 16:vzj2016.07.0064 Gottselig N, Sohrt J, Uhlig D, Nischwitz V, Weiler M, Amelung W (2020) Groundwater controls on colloidal transport in forest stream waters. Sci Total Environ 717:134638 Gu S, Gruau G, Dupas R, Jeanneau L (2020) Evidence of colloids as important phosphorus carriers in natural soil and stream waters in an agricultural catchment. J Environ Qual 49:921–932 Henderson R, Kabengi N, Mantripragada N, Cabrera M, Hassan S, Thompson A (2012) Anoxia-induced release of colloid- and nanoparticle-bound phosphorus in grassland soils. Environ Sci Technol 46:11727–11734 Hens M, Merckx R (2002) The role of colloidal particles in the speciation and analysis of “dissolved” phosphorus. Water Res 36:1483–1492 Hosseini SH, Liang X, Niyungeko C, Miaomiao H, Li F, Khan S, Eltohamy KM (2019) Effect of sheep manure-derived biochar on colloidal phosphorus release in soils from various land uses. Environ Sci Pollut Res 26:36367–36379 Jiang X, Bol R, Cade-Menun BJ, Nischwitz V, Willbold S, Bauke S, Vereecken H, Amelung W, Klumpp E (2017) Colloid-bound and dissolved phosphorus species in topsoil water extracts along a grassland transect from Cambisol to Stagnosol. Biogeosciences 14:1153–1164 Jiang X, Bol R, Nischwitz V, Siebers N, Willbold S, Vereecken H, Amelung W, Klumpp E (2015) Phosphorus Containing Water Dispersible Nanoparticles in Arable Soil. J Environ Qual 44:1772–1781 Jin J, Fang Y, He S, Liu Y, Liu C, Li F, Khan S, Eltohamy KM, Liu B, Liang X (2023) Improved phosphorus availability and reduced degree of phosphorus saturation by biochar-blended organic fertilizer addition to agricultural field soils. Chemosphere 317:137809 Julich D, Julich S, Feger K-H (2017) Phosphorus in Preferential Flow Pathways of Forest Soils in Germany. For 8: Khan S, Liu C, Milham PJ, Eltohamy KM, Hamid Y, Jin J, He M, Liang X (2022a) Nano and Micro Manure Amendments Decrease Degree of Phosphorus Saturation and Colloidal Phosphorous Release from Agriculture Soils. SSRN Electron J 845:157278 Khan S, Milham PJ, Eltohamy KM, Hamid Y, Li F, Jin J, He M, Liang X (2022b) Pteris vittata plantation decrease colloidal phosphorus contents by reducing degree of phosphorus saturation in manure amended soils. J Environ Manage 304:114214 Khan S, Milham PJ, Eltohamy KM, Jin Y, Wang Z, Liang X (2021) Phytate exudation by the roots of Pteris vittata can dissolve colloidal FePO4. Environ Sci Pollut Res 29:13142–13153 Konrad A, Billiy B, Regenbogen P, Bol R, Lang F, Klumpp E, Siemens J (2021) Forest Soil Colloids Enhance Delivery of Phosphorus Into a Diffusive Gradient in Thin Films (DGT) Sink. Front for Glob Chang 3:1–11 Kumar D, Purakayastha TJ, Das R, Yadav RK, Shivay YS, Jha PK, Singh S, Aditi K, Prasad PVV (2023) Long-Term Effects of Organic Amendments on Carbon Stability in Clay–Organic Complex and Its Role in Soil Aggregation. Agronomy 13: Liang X, Jin Y, Zhao Y, Wang Z, Yin R, Tian G (2016) Release and migration of colloidal phosphorus from a typical agricultural field under long-term phosphorus fertilization in southeastern China. J Soils Sediments 16:842–853 Li F, Jin Y, He S, Jin J, Wang Z, Khan S, Tian G, Liang X (2021a) Use of polyacrylamide modified biochar coupled with organic and chemical fertilizers for reducing phosphorus loss under different cropping systems. Agric Ecosyst Environ 310:107306 Li F, Liang X, Niyungeko C, Sun T, Liu F, Arai Y (2019) Chapter Two - Effects of biochar amendments on soil phosphorus transformation in agricultural soils. In: Sparks D.L.B.T.-A. in A. (eds) Academic Press, pp 131–172. Li F, Wang D, You Y, Li G, Eltohamy KM, Khan S, Riaz L (2022) The application of biochar mitigated the negative effects of freeze-thaw on soil and nutrient loss in the restored soil of the alpine mining area . Front Environ Sci 10:2207 Li F, Zhang Q, Klumpp E, Bol R, Nischwitz V, Ge Z, Liang X (2021b) Organic Carbon Linkage with Soil Colloidal Phosphorus at Regional and Field Scales: Insights from Size Fractionation of Fine Particles. Environ Sci Technol 55:5815–5825 Lin P, Chen M, Guo L (2012) Speciation and transformation of phosphorus and its mixing behavior in the Bay of St. Louis estuary in the northern Gulf of Mexico. Geochim Cosmochim Acta 87:283–298 Makris KC, Grove JH, Matocha CJ (2006) Colloid-mediated vertical phosphorus transport in a waste-amended soil. Geoderma 136:174–183 Menezes-Blackburn D, Bol R, Klumpp E, Missong A, Nischwitz V, Haygarth PM (2021) Citric Acid Effect on the Abundance, Size and Composition of Water-Dispersible Soil Colloids and Its Relationship to Soil Phosphorus Desorption: A Case Study. J Soil Sci Plant Nutr 21:2436–2446 Menezes-Blackburn D, Paredes C, Zhang H, Giles CD, Darch T, Stutter M, George TS, Shand C, Lumsdon D, Cooper P, Wendler R, Brown L, Blackwell M, Wearing C, Haygarth PM (2016a) Organic Acids Regulation of Chemical-Microbial Phosphorus Transformations in Soils. Environ Sci Technol 50:11521–11531 Menezes-Blackburn D, Zhang H, Stutter M, Giles CD, Darch T, George TS, Shand C, Lumsdon D, Blackwell M, Wearing C, Cooper P, Wendler R, Brown L, Haygarth PM (2016b) A Holistic Approach to Understanding the Desorption of Phosphorus in Soils. Environ Sci Technol 50:3371–3381 Meng Q, Jin L, Cheng L, Fang J, Lin D (2021) Release and sedimentation behaviors of biochar colloids in soil solutions. J Environ Sci (china) 100:269–278 Missong A, Bol R, Willbold S, Siemens J, Klumpp E (2016) Phosphorus forms in forest soil colloids as revealed by liquid-state31P-NMR. J Plant Nutr Soil Sci 179:159–167 Missong A, Holzmann S, Bol R, Nischwitz V, Puhlmann H, v. Wilpert K, Siemens J, Klumpp E, (2018) Leaching of natural colloids from forest topsoils and their relevance for phosphorus mobility. Sci Total Environ 634:305–315 Montalvo D, Degryse F, McLaughlin MJ (2015) Natural colloidal P and its contribution to plant P uptake. Environ Sci Technol 49:3427–3434 Murphy J, Riley JP (1962) A modified single solution method for the determination of phosphate in natural waters. Anal Chim Acta 27:31–36 Niyungeko C, Liang X, Liu C, Liu Z, wen, Sheteiwy M, Zhang H, Zhou J, Tian G, (2018) Effect of biogas slurry application rate on colloidal phosphorus leaching in paddy soil: A column study. Geoderma 325:117–124 Saeed H, Hartland A, Lehto NJ, Baalousha M, Sikder M, Sandwell D, Mucalo M, Hamilton DP (2018) Regulation of phosphorus bioavailability by iron nanoparticles in a monomictic lake. Sci Rep 8:1–14 Sato S, Solomon D, Hyland C, Ketterings QM, Lehmann J (2005) Phosphorus speciation in manure and manure-amended soils using XANES spectroscopy. Environ Sci Technol 39:7485–7491 Sumner ME, Miller WP (1996) Cation Exchange Capacity and Exchange Coefficients. Methods Soil Anal 1201–1229 Szymańska E, Saccenti E, Smilde AK, Westerhuis JA (2012) Double-check: Validation of diagnostic statistics for PLS-DA models in metabolomics studies. Metabolomics 8:3–16 Wang L, Missong A, Amelung W, Willbold S, Prietzel J, Klumpp E (2020) Dissolved and colloidal phosphorus affect P cycling in calcareous forest soils. Geoderma 375:114507 Wang S, Li T, Zheng Z (2017) Distribution of microbial biomass and activity within soil aggregates as affected by tea plantation age. Catena 153:1–8 Wang X, Eltohamy KM, Liu C, Li F, Fang Y, Kawasaki A, Liang X (2023) Biochar reduces colloidal phosphorus in soil aggregates: The role of microbial communities. J Environ Manage 326:116745 Wang Z, Chen L, Liu C, Jin Y, Li F, Khan S, Liang X (2021) Reduced colloidal phosphorus loss potential and enhanced phosphorus availability by manure-derived biochar addition to paddy soils. Geoderma 402:115348 Wu Z, Wang S, Luo J (2018) Transfer kinetics of phosphorus (P) in macrophyte rhizosphere and phytoremoval performance for lake sediments using DGT technique. J Hazard Mater 350:189–200 Xia B, Qiu H, Knorr KH, Blodau C, Qiu R (2018) Occurrence and fate of colloids and colloid-associated metals in a mining-impacted agricultural soil upon prolonged flooding. J Hazard Mater 348:56–66 Xiang L, Harindintwali JD, Wang F, Redmile-Gordon M, Chang SX, Fu Y, He C, Muhoza B, Brahushi F, Bolan N, Jiang X, Ok YS, Rinklebe J, Schaeffer A, Zhu Y, Tiedje JM, Xing B (2022) Integrating Biochar, Bacteria, and Plants for Sustainable Remediation of Soils Contaminated with Organic Pollutants. Environ Sci Technol 56:16546–16566 Yan J, Jiang T, Yao Y, Lu S, Wang Q, Wei S (2016) Preliminary investigation of phosphorus adsorption onto two types of iron oxide-organic matter complexes. J Environ Sci 42:152–162 Yang B, Lin H, Bartlett SL, Houghton EM, Robertson DM, Guo L (2021a) Partitioning and transformation of organic and inorganic phosphorus among dissolved, colloidal and particulate phases in a hypereutrophic freshwater estuary. Water Res 196:117025 Yang L, Wu Y, Wang Y, An W, Jin J, Sun K, Wang X (2021b) Effects of biochar addition on the abundance, speciation, availability, and leaching loss of soil phosphorus. Sci Total Environ 758:143657 Yu G, Xiao J, Hu S, Polizzotto ML, Zhao F, McGrath SP, Li H, Ran W, Shen Q (2017) Mineral Availability as a Key Regulator of Soil Carbon Storage. Environ Sci Technol 51:4960–4969 Zang L, Tian GM, Liang XQ, He MM, Bao QB, Yao JH (2013) Profile distributions of dissolved and colloidal phosphorus as affected by degree of phosphorus saturation in paddy soil. Pedosphere 23:128–136 Zhao K, Wang N, Jiang S, Li F, Luo S, Chen A, Li H, Lin X (2022) Potential implications of biochar and compost on the stoichiometry ‑ based assessments of soil enzyme activity in heavy metal ‑ polluted soils. Carbon Res 1:1–19 Zhejiang Soil Census Office (1994) Soil of Zhejiang. Zhejiang Science and Technology Press, Hangzhou, China Zhou J, Liang X, Shan S, Yan D, Chen Y, Yang C, Lu Y, Niyungeko C, Tian G (2019) Nutrient retention by different substrates from an improved low impact development system. J Environ Manage 238:331–340