Zhang Jian, Zhou Jia Xing, Ji Yan Peng, Bi Wen Long, Liu Fen Wu
Environmental Engineering Laboratory, College of Resource and Environment, Shanxi Agricultural University, Taigu, People's Republic of China.
Environ Technol. 2023 Nov;44(27):4147-4156. doi: 10.1080/09593330.2022.2082323. Epub 2022 May 29.
The effect of Fe(II) concentrations on schwertmannite bio-synthesis and the As(III) removal capacity of schwertmannite were investigated in this study. () were inoculated into five FeSO systems with initial concentrations of 50, 100, 200, 300, and 400 mmol/L, respectively, to bio-synthesize schwertmannite. The Fe(II) of the systems were almost completely oxidised at 48, 72, 120, 168, and 192 h, respectively, and the bio-schwertmannite yield was 1.99, 3.81, 9.36, 12.42, and 21.60 g/L. The results of this study indicate that all minerals harvested from the different systems are schwertmannite. As the initial Fe(II) concentration increases, the effect of the minerals removing As(III) decreases; moreover, the structure and extracellular polymeric substance (EPS) of schwertmannite may regulate the As(III) removal process. The EPS generated by the can absorb As(III). The outcomes of this study provide fresh insights into the bio-synthetic regulation of schwertmannite and play a significant role in treating As-containing groundwater.
本研究考察了Fe(II)浓度对施氏矿物生物合成及施氏矿物去除As(III)能力的影响。将()分别接种到初始浓度为50、100、200、300和400 mmol/L的五个FeSO体系中,以生物合成施氏矿物。各体系中的Fe(II)分别在48、72、120、168和192 h时几乎完全被氧化,生物施氏矿物产量分别为1.99、3.81、9.36、12.42和21.60 g/L。本研究结果表明,从不同体系中收获的所有矿物均为施氏矿物。随着初始Fe(II)浓度的增加,矿物去除As(III)的效果降低;此外,施氏矿物的结构和胞外聚合物(EPS)可能会调节As(III)的去除过程。()产生的EPS可以吸附As(III)。本研究结果为施氏矿物的生物合成调控提供了新的见解,并在处理含砷地下水方面发挥了重要作用。