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Colloidal interactions of micro-sized biochar and a kaolinitic soil clay

Mai N.T. Faculty of Environmental Sciences, University of Science, Vietnam National University, Hanoi (VNU), 334 Nguyen Trai, Thanh Xuan, Hanoi, Viet Nam|
Nguyen M.N. | Dultz S. | Nguyen N.H. | Nguyen T.T. University of Science and Technology of Hanoi, Vietnam Academy of Science and Technology, 18 Hoang Quoc Viet, Hanoi, Viet Nam| Nguyen A.T.Q. Faculty of Biology, Thai Nguyen University of Education, Thai Nguyen University (TNU), 20 Luong Ngoc Quyen, Thai Nguyen, Viet Nam| Pham N.T.T. Institute for Agricultural Environment, Vietnam Academy of Agricultural Sciences, Phu Do, Nam Tu Liem, Hanoi, Viet Nam| Nguyen A.M. Faculty of Environment and Natural Resources, Ha Tay Community College, Thuy Xuan Tien, Chuong My, Hanoi, Viet Nam|

Science of the Total Environment Số , năm 2020 (Tập 738, trang -)

ISSN: 489697

ISSN: 489697

DOI: 10.1016/j.scitotenv.2020.139844

Tài liệu thuộc danh mục: ISI, Scopus

Article

English

Từ khóa: Agricultural chemicals; Agricultural robots; Ionic strength; Kaolinite; Positive ions; Pyrolysis; Salts; Soils; Water treatment; Biochar amendments; Colloidal dynamics; Colloidal interaction; Colloidal properties; Multivalent cations; Negatively charged; Production methods; Solution chemistry; Sols; biochar; charcoal; oxygen; unclassified drug; biochar; charcoal; kaolin; agricultural application; biochar; cation; clay mineral; clay soil; colloid; erosion control; kaolinite; organic matter; pyrolysis; soil amendment; soil erosion; Article; ash; chemical composition; chemical engineering; chemical interaction; colloid; concentration (parameter); dispersion; erosion; fractionation; heating; ionic strength; particle size; pH; physical chemistry; priority journal; pyrolysis; risk reduction; soil aggregation; soil temperature; static electricity; surface charge; clay; soil; Charcoal; Clay; Kaolin; Soil
Tóm tắt tiếng anh
Fine-sized biochars and clay minerals co-present in various circumstances, e.g., agricultural land and water treatment. Because both of these materials are scavengers for nutrients, agrochemicals and other toxicants, their dispersibility and transportability have received much attention. However, little is documented about their colloidal interactions and to what extent biochar particles can stimulate the dispersion of clay minerals. Here, the effect of engineered micro-sized biochar amendment on the surface charge (SC) and colloidal dynamics of the clay fraction of a kaolinite-rich soil was determined. The engineered biochars showed distinctive SC and colloidal properties depending on their pyrolysis conditions (e.g., oxygen level and temperature) and solution chemistry (i.e., pH and cation type). Two types of biochars prepared under non-biochar-oriented pyrolysis (open heating, ‘O-biochar’) and biochar-oriented pyrolysis (N2-supported heating, ‘N2-biochar’) showed contrasting effects on the colloidal dynamics of clay. The O-biochars provoked aggregation due to their higher content of soluble salts, which increased ionic strength and provided multivalent cations, inducing bridging between negatively charged colloids. In contrast, the N2 biochars low in soluble salts and rich in negatively charged burned organic matter compounds favoured the dispersion of clay. The adjustment of biochar production methods can therefore be highlighted as the way to customize biochar for specific uses or to reduce the risk of clay loss from soils in the short term. In the long term, when soluble salts are removed by leaching, it is likely that dispersion is facilitated and the risk for erosion increases. © 2020 Elsevier B.V.

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