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Evaluation of modified basalt fiber as biological carrier media for wastewater treatment with the extended DLVO theory model

机译:用延伸DLVO理论模型评价改性玄武岩纤维作为生物载体培养基的废水处理

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In this study, environment-friendly inorganic basalt fiber (BF) was used as bio-carrier for wastewater treatment. To enhance the bio-affinity, raw BF was modified by grafting the diethylamino functional groups to make the surface more hydrophilic and electro-positive. Contact angle and zeta potential of modified basalt fiber (MBF) were characterized. The capacity of MBF bio-carriers was evaluated by microorganism immobilization tests. To explain the mechanism of capacity enhancement by modification, the profiles of total interaction energy barrier between raw BF (or MBF) and bacteria (Escherichia coli, E. coli) were discussed based on the extended Derjaguin-Landau-Verwey-Overbeek (DLVO) theory. The results showed the contact angle of fiber decreased from 89.71 degrees to 63.08 degrees after modification, and zeta potential increased from - 18.53 to +10.58 mV. The microorganism immobilization tests showed that the surface modification accelerated the initial bacterial adhesion on fiber. The total interaction energy barrier between MBF and E. coli disappeared as a result of electrostatic and hydrophilic attractive forces, and enhanced the irreversible adhesion. MBF bio-carrier medium provides a promising alternative to conventional bio-carrier materials for wastewater treatment.
机译:在该研究中,将环保的无机玄武岩纤维(BF)用作废水处理的生物载体。为了增强生物亲和力,通过接枝脱乙基氨基官能团以使表面更亲水和电阳性的制备原料BF。表征了改性玄武岩纤维(MBF)的接触角和Zeta电位。通过微生物固定试验评估MBF生物载体的能力。为了解释通过修改的能力增强机制,基于延伸的Derjaguin-Landau-Verwey-Upbeek(DLVO),讨论了原始BF(或MBF)和细菌(Escherichia Coli,大肠杆菌)之间的总相互作用能量屏障的轮廓理论。结果表明,改性后纤维的接触角从89.71度降低至63.08度,Zeta电位从-18.53增加到+ 10.58 mV。微生物固定试验表明,表面改性加速了纤维上的初始细菌粘附。由于静电和亲水性吸引力,MBF和大肠杆菌之间的总相互作用能量屏障消失,增强了不可逆的粘合性。 MBF生物载体培养基提供了用于废水处理的常规生物载体材料的有希望的替代品。

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