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Application of modified chitosan membrane for microbial fuel cell: Roles of proton carrier site and positive charge

机译:改性壳聚糖膜在微生物燃料电池中的应用:质子载体位和正电荷的作用

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Modified chitosan membrane was synthesized as a proton exchange membrane for microbial fuel cell application. Glutaraldehyde and sulfosuccinic acid were used as crosslinking agents in order to improve its ultimate tensile strength and proton conductivity. 3-Chloro-2-hydroxypropyl trimethylammonium chloride was employed for quaternization to develop its antimicrobial activity. The results showed that the proton conductivity of the membrane was enhanced with the content of sulfosuccinic acid, as a result of proton carrier sites, until a certain value was reached. The additional positive charge from quaternization increased with the reaction time. The morphological change of microorganisms in contact with the surface of the quaternized chitosan membrane exhibited damage and the number of damaged microorganisms increased with the positive charge density; nevertheless, the high positive charge density resulted in not only a high antimicrobial property, but also in significant water uptake of the quaternized chitosan membrane. As a consequence, the strength of the membrane was lost. Additionally, the positive charge also accelerated the adhesion of microorganisms at the membrane surface, but the surface growth could be retarded due to the high number of microorganisms being damaged. (C) 2016 Elsevier Ltd. All rights reserved.
机译:合成了改性壳聚糖膜作为质子交换膜,用于微生物燃料电池。戊二醛和磺基琥珀酸被用作交联剂,以提高其最终的拉伸强度和质子传导性。使用3-氯-2-羟丙基三甲基氯化铵进行季铵化,以开发其抗菌活性。结果表明,由于质子载体位点,膜的质子电导率随磺基琥珀酸的含量而增加,直到达到一定值为止。季铵化产生的额外正电荷随反应时间的增加而增加。与季铵化壳聚糖膜表面接触的微生物的形态变化表现出破坏,并且随着正电荷密度的增加,破坏的微生物数量增加。然而,高的正电荷密度不仅导致高的抗菌性能,而且导致季铵化的壳聚糖膜的大量吸水。结果,膜的强度丧失。另外,正电荷还加速了微生物在膜表面的粘附,但是由于大量微生物被破坏,表面的生长会受到阻碍。 (C)2016 Elsevier Ltd.保留所有权利。

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