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Synthesis of FePcS–PMA–LDH Cointercalation Composite with Enhanced Visible Light Photo-Fenton Catalytic Activity for BPA Degradation at Circumneutral pH

机译:具有增强的可见光-Fenton催化活性的FePcS–PMA–LDH共嵌入复合物的合成可在环境pH下催化BPA降解

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摘要

(1) Background: Iron tetrasulfophthalocyanine with a large nonlinear optical coefficient, good stability, and high catalytic activity has aroused the attention of researchers in the field of photo-Fenton reaction. Further improvement of the visible light photo-Fenton catalytic activity under circumneutral pH conditions for their practical application is still of great importance. (2) Methods: In this paper, iron tetrasulfophthalocyanine (FePcS) and phosphomolybdic acid (PMA) cointercalated layered double hydroxides (LDH) were synthesized by the ion-exchange method. All samples were fully characterized by various techniques and the results showed that FePcS and PMA were successfully intercalated in layered double hydroxides and the resulted compound exhibited strong absorption in the visible light region. The cointercalation compound was tested as a heterogeneous catalyst for the visible light photo-Fenton degradation of bisphenol A (BPA) at circumneutral pH. (3) Results: The results showed that the degradation and total organic carbon removal efficiencies of bisphenol A were 100% and 69.2%, respectively. (4) Conclusions: The cyclic voltammetry and electrochemical impedance spectroscopy measurements demonstrated that the main contribution of PMA to the enhanced photo-Fenton activity of FePcS–PMA–LDH comes from the acceleration of electron transfer in the reaction system. Additionally, the possible reaction mechanism in the photo-Fenton system catalyzed by FePcS–PMA–LDH was also proposed.
机译:(1)背景:四硫代酞菁铁具有较大的非线性光学系数,良好的稳定性和较高的催化活性,引起了光芬顿反应领域研究人员的关注。在环境pH条件下进一步提高可见光光芬顿催化活性对于其实际应用仍然非常重要。 (2)方法:本文采用离子交换法合成了四硫代酞菁铁(FePcS)和磷钼酸(PMA)共嵌入层状双氢氧化物(LDH)。所有样品均通过各种技术进行了充分表征,结果表明FePcS和PMA已成功插入层状双氢氧化物中,且所得化合物在可见光区域具有强吸收性。测试了该共嵌入化合物作为非均相催化剂在环境pH值下双酚A(BPA)的可见光光芬顿降解的能力。 (3)结果:结果表明,双酚A的降解率和总有机碳去除率分别为100%和69.2%。 (4)结论:循环伏安法和电化学阻抗谱测量表明,PMA对FePcS-PMA-LDH的增强的光芬顿活性的主要贡献来自于反应系统中电子传递的加速。此外,还提出了FePcS-PMA-LDH催化光芬顿体系的可能反应机理。

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