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首页> 外文期刊>Chemical engineering journal >Changing conventional blending photocatalytic membranes (BPMs): Focus on improving photocatalytic performance of Fe3O4/g-C3N4/PVDF membranes through magnetically induced freezing casting method
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Changing conventional blending photocatalytic membranes (BPMs): Focus on improving photocatalytic performance of Fe3O4/g-C3N4/PVDF membranes through magnetically induced freezing casting method

机译:改变常规的混合光催化膜(BPMS):通过磁诱导冷冻铸造方法,专注于改善Fe3O4 / G-C3N4 / PVDF膜的光催化性能

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摘要

Blending photocatalytic membranes (BPMs) are favored materials for wastewater treatment due to their photocatalytic activity, high permeability and fouling resistance. However, using conventional blending modification to prepare BPMs always suffers significant reduction of photocatalytic efficiency due to the maldistribution of photocatalysts, especially a number of photocatalysts embedded inside the membrane, losing photocatalytic activity and blocking the membrane channels. To overcome this problem, we proposed an alternative magnetically induced freezing casting method to prepare highly effective macroporous Fe3O4/g-C3N4/PVDF membranes (FCMs). The magnetic Fe3O4/g-C3N4 could be directionally and highly exposed to the membrane surface and ordered latticed macroporous structure was formed. The FCMs exhibited significantly enhanced visible-light absorption probably due to more exposed photocatalytic active sites available on membrane surface and the macroporous structure facilitating the light penetration. The photodegradation rate constant of optimal FCM was 2.7 times higher than that of conventional BPMs. Moreover, the FCM had extremely high porosity and water flux, up to 88.5% and 15835.2 Lm(-2) h(-1), respectively. The FCMs also had good stability (retained over 90% of photocatalytic activity after 5 recycles) and fouling resistant (2.38% BSA adsorption). Therefore, this work provides an alternative and easily scale-up strategy to construct highly effective BPMs for wastewater treatment.
机译:混合光催化膜(BPMS)是由于其光催化活性,高渗透率和污垢抗性的废水处理的物质。然而,使用常规的混合改性以制备BPMS,由于光催化剂的恶性,尤其是嵌入膜内部的许多光催化剂,损失光催化活性并阻断膜通道的许多光催化剂,因此始终持续降低光催化效率。为了克服这个问题,我们提出了一种替代的磁诱导的冷冻铸造方法,制备高效的大孔Fe3O4 / g-C3N4 / PVDF膜(FCMS)。磁性Fe 3 O 4 / G-C3N4可以定向和高度暴露于膜表面并形成有序的晶片大孔结构。 FCMS显着增强了可见光吸收,可能是由于膜表面上可用的更暴露的光催化活性位点和促进光渗透的大孔结构。最佳FCM的光降解速率常数高于传统BPMS的2.7倍。此外,FCM具有极高的孔隙率和水通量,分别高达88.5%和15835.2 LM(-2)H(-1)。 FCMS还具有良好的稳定性(在5次回收后保留超过90%的光催化活性)和抗污染(2.38%BSA吸附)。因此,这项工作提供了一种替代和易于扩大的策略,用于构建用于废水处理的高效BPM。

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