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添加稻草生物炭固定污染土壤中的 Cu(II)、Pb(II) 和 Cd(II)。

Immobilization of Cu(II), Pb(II) and Cd(II) by the addition of rice straw derived biochar to a simulated polluted Ultisol.

机构信息

State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, P.O. Box 821, Nanjing, China.

出版信息

J Hazard Mater. 2012 Aug 30;229-230:145-50. doi: 10.1016/j.jhazmat.2012.05.086. Epub 2012 Jun 1.

DOI:10.1016/j.jhazmat.2012.05.086
PMID:22704774
Abstract

To develop new remediation methods for acidic soils polluted by heavy metals, the chemical fractions of Cu(II), Pb(II) and Cd(II) in an Ultisol with and without rice straw biochar were compared and the effect of biochar incorporation on the mobility and bioavailability of these metals was investigated. In light of the decreasing zeta potential and increasing CEC, the incorporation of biochar made the negative soil surface charge more negative. Additionally, the soil pH increased markedly after the addition of biochar. These changes in soil properties were advantageous for heavy metal immobilization in the bulk soil. The acid soluble Cu(II) and Pb(II) decreased by 19.7-100.0% and 18.8-77.0%, respectively, as the amount of biochar added increased. The descending range of acid soluble Cd(II) was 5.6-14.1%, which was much lower than that of Cu(II) and Pb(II). When 5.0 mmol/kg of these heavy metals was added, the reducible Pb(II) for treatments containing 3% and 5% biochar was 2.0 and 3.0 times higher than that of samples without biochar, while the reducible Cu(II) increased by 61.6% and 132.6% for the corresponding treatments, respectively. When 3% and 5% biochar was added, the oxidizable portion of Pb(II) increased by 1.18 and 1.94 times, respectively, while the oxidizable portion of Cu(II) increased by 8.13 and 7.16 times, respectively, primarily due to the high adsorption affinity of functional groups of biochar to Cu(II). The residual heavy metal contents were low and changed little with the incorporation of biochar.

摘要

为了开发修复受重金属污染酸性土壤的新方法,比较了原状土和添加水稻秸秆生物炭后原状土中 Cu(II)、Pb(II) 和 Cd(II) 的化学形态,研究了生物炭添加对这些金属的迁移性和生物可利用性的影响。由于比表面积和阳离子交换量的增加,生物炭的添加使土壤表面负电荷变得更负。此外,添加生物炭后土壤 pH 值显著升高。这些土壤性质的变化有利于重金属在土壤中的固定。随着生物炭添加量的增加,酸溶态 Cu(II)和 Pb(II)分别减少了 19.7-100.0%和 18.8-77.0%。酸溶态 Cd(II)的下降幅度为 5.6-14.1%,远低于 Cu(II)和 Pb(II)。当添加 5.0 mmol/kg 的这些重金属时,添加 3%和 5%生物炭的处理中可还原 Pb(II)分别比未添加生物炭的样品高 2.0 和 3.0 倍,而相应处理中可还原 Cu(II)分别增加了 61.6%和 132.6%。当添加 3%和 5%的生物炭时,Pb(II)的可氧化部分分别增加了 1.18 和 1.94 倍,而 Cu(II)的可氧化部分分别增加了 8.13 和 7.16 倍,主要是因为生物炭的功能基团对 Cu(II)具有很高的吸附亲和力。残留重金属含量较低,添加生物炭后变化不大。

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