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Increased Magnesium Adsorption onto Colloids in Two Variable-Charge Soils in the Presence of Bacillus subtilis and Pseudomonas fluorescens

机译:在Bacillus枯草芽孢杆菌和假单胞菌荧光的存在下,将镁吸附到两个可变电荷的土壤中的胶体上

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摘要

The adsorption of Mg2+ onto soil colloids from a Ultisol and an Oxisol in the presence of Pseudomonas fluorescens and Bacillus subtilis was studied in a batch adsorption experiment as a function of the Mg2+ concentration and bacteria/soil colloid ratio. The results indicated that Mg2+ adsorption was enhanced due to P. fluorescens and B. subtilis loading on soil colloids. The larger the amount of bacteria that were adhered to colloids, the greater the increase in Mg2+ adsorption. More bacteria were adhered to the Oxisol due to its higher contents of iron and aluminum oxides, and thus, the enhancement in Mg2+ adsorption induced by bacteria was greater than that achieved with the Ultisol. Both soils had a greater adhesion capacity for B. subtilis than for P. fluorescens, and therefore, B. subtilis was responsible for a greater enhancement of Mg2+ adsorption than P. fluorescens. When the concentration of B. subtilis was 6 mg L-1, the adsorption of Mg2+ on the Ultisol and Oxisol was 2.51- and 2.18-times that of the bulk soil without bacteria. At the same concentration of P. fluorescens, the adsorption of Mg2+ on the Ultisol and Oxisol was 1.54- and 1.92-times that of the bulk soil without bacteria. The zeta potential of the Ultisol and Oxisol changed from positive to negative or became more negative after the two bacteria were adhered onto soil surfaces at pH values from 3 to 8. The increase in Mg2+ adsorption was significantly correlated with the changes in zeta potential of soil colloids induced by the adhesion of bacteria. It was concluded that bacterial adhesion increased the negative surface charge in variable-charge soils, and thus, enhanced the adsorption of Mg2+ by the soils due to the increase in electrostatic interaction between Mg2+ and soil colloids.
机译:在批量吸附试验中,研究了在荧光荧光素和枯草芽孢杆菌存在下从Ultisol和Oxisol中的土壤胶体吸附Mg2 +。结果表明,由于P.荧光,枯草芽孢杆菌在土壤胶体上加载而增强了Mg2 +吸附。粘附在胶体上的细菌量越大,Mg2 +吸附的增加越大。由于其含量较高的铁和氧化铝含量较高,因此,细菌诱导的Mg2 +吸附的增强,更多细菌粘附到氧气上。对于氟化胶,两种土壤的粘附能力较大,因此,B.枯草芽孢杆菌对Mg2 +吸附的含量较大,枯草芽孢杆菌对荧光致荧光。当B.枯草芽孢杆菌的浓度为6mg L-1时,Mg2 +在Ultisol和oxisol上的吸附是散体土壤的2.51-倍,而没有细菌的2.18倍。以相同的荧光浓度的荧光浓度,Mg2 +在Ultisol和Oxisol上的吸附是散粒土壤的1.54-倍,没有细菌。 Zeta和oxisol的ζ电位从阳性变为阴性或在pH值从3至8的pH值粘附到土壤表面后变得更加阴性。Mg2 +吸附的增加与土壤Zeta潜力的变化显着相关细菌粘附引起的胶体。结论是,细菌粘合力增加了可变电荷的土壤中的负面表面电荷,因此,由于Mg2 +和土壤胶体之间的静电相互作用的增加,土壤增强了Mg2 +的吸附。

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