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在恶劣 pH 环境下利用微生物诱导碳酸钙/磷酸沉淀(MICP/MIPP)固定水溶液和黄土中的铅。

Immobilizing lead in aqueous solution and loess soil using microbially induced carbonate/phosphate precipitation (MICP/MIPP) under harsh pH environments.

机构信息

School of Civil Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China; Shaanxi Key Laboratory of Geotechnical and Underground Space Engineering (XAUAT), Xi'an 710055, China.

出版信息

J Hazard Mater. 2024 Dec 5;480:135884. doi: 10.1016/j.jhazmat.2024.135884. Epub 2024 Sep 17.

DOI:10.1016/j.jhazmat.2024.135884
PMID:39298970
Abstract

The bioaccumulation of heavy metals due to metallurgical and smelting activities threatens human health. Although microbial-induced carbonate/phosphate precipitation (MICP/MIPP) technology has been applied to heavy metal remediation, the relative merits of MICP and MIPP, especially under extreme pH environments, have not yet been documented. In this study, Sporosarcina pasteurii (SP)-based MICP and Bacillus megaterium (BM)-based MIPP were applied to immobilize lead (Pb) in aqueous solution and loess soil. The results showed that the BM retained a strong phosphorolysis ability when under strongly acidic conditions, while the ureolysis ability of SP approached zero. Furthermore, the bioprecipitates obtained under BM-based MIPP had a denser appearance, presumably due to the enrichment of calcite and apatite crystals. The results also showed that Pb immobilization was achieved through bacterial adsorption, the chelate function of sodium glycerophosphate (SGP), large organic matter complexation, and biomineralization through the MICP/MIPP mechanism. Under SP-based MICP, SP and large organic matter immobilized Pb at rates of 17.6 % and 31.7 %, respectively, while under BM-based MIPP, BM, organic matter, and SGP immobilized Pb at rates of 21.5 %, 23.4 %, and 48.5 % respectively. The MICP and MIPP mechanisms dominated Pb immobilization at rates of 78.6 % and 99.6 %, respectively.

摘要

由于冶金和冶炼活动造成的重金属生物积累威胁着人类健康。虽然微生物诱导碳酸钙/磷酸盐沉淀(MICP/MIPP)技术已被应用于重金属修复,但 MICP 和 MIPP 的相对优势,尤其是在极端 pH 环境下,尚未有文献记载。在本研究中,应用芽孢八叠球菌(SP)介导的 MICP 和巨大芽孢杆菌(BM)介导的 MIPP 来固定水溶液和黄土中的铅(Pb)。结果表明,在强酸性条件下,BM 仍保持着很强的解磷能力,而 SP 的脲酶活力接近于零。此外,在 BM 介导的 MIPP 下获得的生物沉淀物外观更致密,可能是由于方解石和磷灰石晶体的富集。结果还表明,Pb 的固定是通过细菌吸附、甘油磷酸钠(SGP)的螯合作用、大分子有机物络合以及通过 MICP/MIPP 机制的生物矿化作用实现的。在 SP 介导的 MICP 下,SP 和大分子有机物分别以 17.6%和 31.7%的速率固定 Pb,而在 BM 介导的 MIPP 下,BM、有机物和 SGP 分别以 21.5%、23.4%和 48.5%的速率固定 Pb。MICP 和 MIPP 机制分别以 78.6%和 99.6%的速率主导 Pb 的固定。

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