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细菌培养和添加钙源对利用仿生碳酸钙沉淀修复铅和铜的影响。

Effects of Bacterial Culture and Calcium Source Addition on Lead and Copper Remediation Using Bioinspired Calcium Carbonate Precipitation.

作者信息

Xue Zhong-Fei, Cheng Wen-Chieh, Wang Lin, Wen Shaojie

机构信息

School of Civil Engineering, Xi'an University of Architecture and Technology, Xi'an, China.

Shaanxi Key Laboratory of Geotechnical and Underground Space Engineering (XAUAT), Xi'an, China.

出版信息

Front Bioeng Biotechnol. 2022 May 2;10:889717. doi: 10.3389/fbioe.2022.889717. eCollection 2022.

Abstract

Lead and copper ions from wastewater induced by metallurgical processes are accumulated in soils, threatening plant and human health. The bioinspired calcium carbonate precipitation is proven effective in improving the cementation between soil particles. However, studies on capsulizing heavy metal ions using the bioinspired calcium carbonate precipitation are remarkably limited. The present study conducted a series of test tube experiments to investigate the effects of bacterial culture and calcium source addition on the remediation efficiency against lead and copper ions. The calcium carbonate precipitation was reproduced using the Visual MINTEQ software package to reveal the mechanism affecting the remediation efficiency. The degradation in the remediation efficiency against lead ions relies mainly upon the degree of urea hydrolysis. However, higher degrees of urea hydrolysis cause remediation efficiency against copper ions to reduce to zero. Such high degree of urea hydrolysis turns pH surrounding conditions into highly alkaline environments. Therefore, pursuing higher degrees of urea hydrolysis might not be the most crucial factor while remedying copper ions. The findings shed light on the importance of modifying pH surrounding conditions in capsulizing copper ions using the bioinspired calcium carbonate precipitation.

摘要

冶金过程产生的废水中的铅和铜离子会在土壤中积累,威胁植物和人类健康。仿生碳酸钙沉淀已被证明可有效改善土壤颗粒之间的胶结作用。然而,利用仿生碳酸钙沉淀包裹重金属离子的研究非常有限。本研究进行了一系列试管实验,以研究细菌培养和添加钙源对铅和铜离子修复效率的影响。使用Visual MINTEQ软件包再现碳酸钙沉淀,以揭示影响修复效率的机制。对铅离子修复效率的降低主要取决于尿素水解的程度。然而,较高程度的尿素水解会导致对铜离子的修复效率降至零。如此高程度的尿素水解会使周围环境的pH值变为高度碱性环境。因此,在修复铜离子时,追求更高程度的尿素水解可能不是最关键的因素。这些发现揭示了在利用仿生碳酸钙沉淀包裹铜离子过程中调节周围环境pH值的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25ce/9108487/3cf72f353e19/fbioe-10-889717-g001.jpg

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