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Ferrous-oxalate-decorated polyphenylene sulfide fenton catalytic microfiber for methylene blue degradation

机译:草酸亚铁修饰的聚苯硫醚芬顿催化超细纤维降解亚甲基蓝

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摘要

In this study, ferrous-oxalate(FeC2O4)-decorated polyphenylene sulfide(PPS) catalytic microfiber(PPS/FeC2O4) was synthesized as an efficient heterogeneous Fenton catalyst through a chemical precipitation method. Moreover, an underlying mechanism of synthetic processes was investigated and verified by monitoring intermediate products. Regarding the mechanism, the catalytic microfiber was found to solidly anchor FeC2O4 crystal grains on the surface due to sulfonated PPS interface bonding, remarkably improving the operational stability and reusability of the PPS/FeC2O4 catalyst. Additionally, the separation process of PPS/FeC2O4 was simplified without time-consuming filtration, attributable to the tangled structure of non-woven fabric that prevented the fibers from dispersing. In the typical process, improvement in the PPS/FeC2O4 catalyst revealed methylene blue degradation efficiency of the catalytic fiber above 90% at 6 min and 99% at 15 min, superior to that of the FeC2O4 catalyst. Therefore, PPS/FeC2O4 can be utilized as a potential heterogeneous Fenton catalyst for organic contaminant degradation in wastewater.
机译:本研究通过化学沉淀法合成了草酸亚铁(FeC2O4)修饰的聚苯硫醚(PPS)催化超细纤维(PPS / FeC2O4)。此外,通过监测中间产物对合成过程的潜在机理进行了研究和验证。关于机理,发现催化微纤维由于磺化的PPS界面键而将FeC2O4晶粒牢固地锚定在表面上,从而显着提高了PPS / FeC2O4催化剂的操作稳定性和可重复使用性。另外,由于无纺布的缠结结构阻止了纤维的分散,因此简化了PPS / FeC2O4的分离过程,而无需进行费时的过滤。在典型过程中,PPS / FeC2O4催化剂的改进表明,催化纤维的亚甲基蓝降解效率在6分钟时超过90%,在15分钟时超过99%,优于FeC2O4催化剂。因此,PPS / FeC2O4可以用作潜在的非均相Fenton催化剂,用于废水中有机污染物的降解。

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