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Solubility of Lead and Copper in Biochar-Amended Small Arms Range Soils: Influence of Soil Organic Carbon and pH

机译:生物炭改良的小范围土壤中铅和铜的溶解度:土壤有机碳和pH的影响

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Biochar is often considered a strong heavy metal stabilizing agent. However, biochar in some cases had no effects on, or increased the soluble concentrations of, heavy metals in soil. The objective of this study was to determine the factors causing some biochars to stabilize and others to dissolve heavy metals in soil. Seven small arms range soils with known total organic carbon (TOC), cation exchange capacity, pH, and total Pb and Cu contents were first screened for soluble Pb and Cu concentrations. Over 2 weeks successive equilibrations using weak acid (pH 4.5 sulfuric acid) and acetate buffer (0.1 M at pH 4.9), Alaska soil containing disproportionately high (31.6%) TOC had nearly 100% residual (insoluble) Pb and Cu. This soil was then compared with sandy soils from Maryland containing significantly lower (0.5—2.0%) TOC in the presence of 10 wt % (i) plant biochar activated to increase the surface-bound, carboxyl and phosphate ligands (PS450A), (ii) manure biochar enriched with soluble P (BL700), and (iii) unactivated plant biochars produced at 350 °C (CH350) and 700 °C (CH500) and by flash carbonization (corn). In weak acid, the pH was set by soil and biochar, and the biochars increasingly stabilized Pb with repeated extractions. In pH 4.9 acetate buffer, PS450A and BL700 stabilized Pb, and only PS450A stabilized Cu. Surface ligands of PS450A likely complexed and stabilized Pb and Cu even under acidic pH in the presence of competing acetate ligand. Oppositely, unactivated plant biochars (CH350, CH500, and corn) mobilized Pb and Cu in sandy soils; the putative mechanism is the formation of soluble complexes with biochar-borne dissolved organic carbon. In summary, unactivated plant biochars can inadvertently increase dissolved Pb and Cu concentrations of sandy, low TOC soils when used to stabilize other contaminants.
机译:生物炭通常被认为是一种强大的重金属稳定剂。但是,在某些情况下,生物炭对土壤中的重金属没有影响或没有增加重金属的可溶性浓度。这项研究的目的是确定导致某些生物炭稳定并溶解其他重金属的因素。首先筛选7种具有已知总有机碳(TOC),阳离子交换能力,pH以及总Pb和Cu含量的小范围土壤中的可溶性Pb和Cu浓度。在使用弱酸(pH 4.5硫酸)和乙酸盐缓冲液(pH 4.9时为0.1 M)连续2周的平衡中,阿拉斯加土壤中TOC含量过高(31.6%),残留的Pb和Cu几乎达到100%。然后将这种土壤与马里兰州的含沙量较低(0.5-2.0%)的TOC在存在10 wt%的土壤时进行比较(i)被激活以增加表面结合的羧基和磷酸盐配体(PS450A)的植物生物炭,(ii )富含可溶性P(BL700)的肥料生物炭,以及(iii)在350°C(CH350)和700°C(CH500)以及通过闪蒸碳化(玉米)产生的未活化的植物生物炭。在弱酸中,pH值是由土壤和生物炭设定的,生物炭通过反复萃取逐渐稳定了铅。在pH 4.9的醋酸盐缓冲液中,PS450A和BL700稳定了Pb,只有PS450A稳定了Cu。 PS450A的表面配体即使在存在竞争性乙酸盐配体的情况下,即使在酸性pH下,也可能使Pb和Cu络合并稳定。相反,未活化的植物生物炭(CH350,CH500和玉米)使沙土中的Pb和Cu迁移。推测的机理是与生物炭传播的溶解有机碳形成可溶性复合物。总而言之,当未活化的植物生物炭用于稳定其他污染物时,会无意中增加含沙量低的TOC土壤中溶解的铅和铜的浓度。

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