Mitigation of soil salinization and alkalization by bacterium-induced inhibition of evaporation and salt crystallization.

化学 盐度 结晶 环境化学 无机化学 核化学 硫酸盐 化学工程
作者
Wang Ziyan,Wenjuan Tan,Dengqin Yang,Keqing Zhang,Liwei Zhao,Zhengguo Xie,Tao Xu,Yuwei Zhao,Wang Xiaonan,Xiangliang Pan,Daoyong Zhang
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:755: 142511- 被引量:2
标识
DOI:10.1016/j.scitotenv.2020.142511
摘要

Soil salinization and alkalization is one of the most devastating environmental problems, threatening the sustainable development of agriculture. Bio-amelioration using microorganisms such as bacteria is a promising method for the remediation of calcareous sodic and saline-sodic soil due to its high efficiency, low cost and environmental-friendly characteristics. In the present study, a salt resistant bacterium, Bacillus subtilis BSN-1, was isolated from arid region in Xinjiang, China, and its effects on salt crystallization during evaporation crystallization of saline-alkali soil solution were examined. It was found that the fermentation products of B. subtilis BSN-1, such as glutamic acid, significantly lowered the pH of saline soil solution because of the ionization of carboxyl. The complexation between Ca2+ and fermentation products inhibited the precipitation of Ca-P compounds as well, since the binding sites supplied for Ca2+ is one or two orders of magnitude than that for HPO42-. Moreover, the increased content of active phosphate is attributed to the chelation and adsorption exerted through carboxyl and amide bonds. These findings demonstrated that Bacillus subtilis BSN-1 suppressed the crystallization of phosphate and therefor increased the content of active phosphate, which may provide a promising solution for amendment and remediation of saline-alkali soil.
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