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Aged biochar changed copper availability and distribution among soil fractions and influenced corn seed germination in a copper- contaminated soil

机译:老化的生物炭改变了铜的有效性和土壤组分之间的分布,并影响了铜污染土壤中玉米种子的萌发

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摘要

Biochar has been recommended as a multi-beneficial amendment for the in situ remediation of heavy metals contaminated soils due to its high recalcitrance, stability, specific surface area and retention capacity, which leads to a long-lasting influence on the immobilization of soil contaminants. The influence of biochar on the availability of heavy metals such as copper is not fully understood and may be related to a change in copper association with soils fractions. Therefore, a long-time laboratory incubation study was set up as a completely randomized design to test the effect of biochar from different sources (coconut husks-CHB, orange bagasse-OBB and sewage sludge-SSB) at two rates of application (30 and 60 t ha(-1)) on the distribution of copper in a copper-contaminated soil after 24 months incubation. Copper distribution was evaluated through a sequential extraction procedure that fractionated copper into five fractions: F1 (soluble and exchangeable), F2 (specifically bound), F3 (organic matter bound), F4 (Fe and Mn oxide bound) and F5 (residual). Copper availability, soil pH and organic matter were also evaluated. Corn seeds were germinated in the incubated biochar soil to investigate the effect of biochar on seed germination and plantlets characteristics. All biochars increased soil pH and the concentration of oxidizable organic matter, and reduced copper availability after the 24 months incubation. CHB caused a discrete influence on copper distribution among soil fractions. OBB30 increased Fl (54.5%), F3 (24.0%), F4 (32.2%) and F5 (64.1%), and reduced F2 (39.8%); OBB60 reduced Fl (61.8%), F2 (16.5%) and F3 (16.0%) and increased F4 (18.0%) and F5 (84.4%). SSB30 strongly reduced Cu concentration in Fl (96.2%), F2 (34.0%), and F3 (22.2%), and increased F4 (54.4%); SSB60 reduced F1 (57.5%) and F3 (59.4%). Considering the high stability of biochar, the association of copper to the organic fraction leads to a long-time reduction in copper availability in the contaminated soil, which can reduce the cost and increase the efficiency of the remediation process. SSB reduced seed germination but produced vigorous and well-developed plantlets. Therefore, with proper production procedure to reduce the volatile matter content, SSB may not interfere with seed germination and has the greatest potential to be used for the remediation of copper-contaminated sites. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由于生物炭具有高的顽固性,稳定性,比表面积和保留能力,因此被推荐作为原位修复受重金属污染的土壤的一种多有益的改良剂,这对土壤污染物的固定化产生了长期影响。生物炭对重金属(如铜)的利用率的影响尚不完全清楚,可能与铜与土壤组分的变化有关。因此,建立了一项长期的实验室孵化研究,作为一项完全随机的设计,以两种施用率(30和30)分别测试不同来源(椰子壳,CHB,橙渣,OBB和污泥-SSB)的生物炭的效果。孵育24个月后,铜在受铜污染的土壤中的分布达到60 t ha(-1))。通过顺序萃取程序评估铜的分布,该程序将铜分为五个部分:F1(可溶和可交换),F2(特定结合),F3(有机物结合),F4(Fe和Mn氧化物结合)和F5(残留)。还评估了铜的有效性,土壤的pH值和有机质。玉米种子在温育的生物炭土壤中发芽,以研究生物炭对种子发芽和幼苗特性的影响。孵育24个月后,所有生物炭均会提高土壤pH值和可氧化有机物的浓度,并降低铜的利用率。 CHB对土壤各部分之间的铜分布产生了离散的影响。 OBB30增加了F1(54.5%),F3(24.0%),F4(32.2%)和F5(64.1%),并降低了F2(39.8%); OBB60降低了F1(61.8%),F2(16.5%)和F3(16.0%),并且增加了F4(18.0%)和F5(84.4%)。 SSB30大大降低了F1(96.2%),F2(34.0%)和F3(22.2%)中的Cu浓度,并提高了F4(54.4%); SSB60减少了F1(57.5%)和F3(59.4%)。考虑到生物炭的高稳定性,铜与有机物的结合导致受污染土壤中铜的长期可用性下降,这可以降低成本并提高修复过程的效率。 SSB减少了种子发芽,但产生了旺盛且发达的幼苗。因此,通过适当的生产程序减少挥发性物质的含量,SSB可能不会干扰种子发芽,并且具有最大的潜力可用于铜污染部位的修复。 (C)2019 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Chemosphere》 |2020年第2期|124828.1-124828.8|共8页
  • 作者

  • 作者单位

    Univ Fed Sergipe Agron Dept BR-49100000 Sao Cristovao SE Brazil;

    Fed Inst Baiano Soil Sci Dept BR-45400000 Valenca BA Brazil;

    Univ Fed Sergipe Chem Dept BR-49100000 Sao Cristovao SE Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Crop residues; Sewage sludge; Biochar; Copper; Bioavailability;

    机译:作物残留;污水污泥;生物炭铜;生物利用度;
  • 入库时间 2022-08-18 05:20:22

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