Wang Mengxue, Wang Yuge, Sun Jiahao, Zhen Jianzheng, Lv Weiyang
National Engineering Lab of Textile Fiber Materials & Processing Technology (Zhejiang), Zhejiang Sci-Tech University, Hangzhou, 310018, PR China.
National Engineering Lab of Textile Fiber Materials & Processing Technology (Zhejiang), Zhejiang Sci-Tech University, Hangzhou, 310018, PR China.
Chemosphere. 2023 Feb;313:137394. doi: 10.1016/j.chemosphere.2022.137394. Epub 2022 Nov 25.
Iron-based layered double hydroxides (LDHs) have drawn tremendous attention as a promising peroxymonosulfate (PMS) activators, but they still suffer from low efficiencies limited by electrostatic agglomeration and low electronic conductivity. Herein, a MgFeAl layered double hydroxide/carbonitride (LDH/CN) heterostructure was constructed via triggering the interlayer reaction of citric acid (CA) and urea. CA as a structure-directing agent regulated the interlayer anion of MgFeAl-LDH, which enabled an interfacial tuning in the process of coupling with CN. The obtained LDH/CN heterostructure, as an efficient PMS activator, achieved nearly 100% bisphenol A (BPA) removal rate in 10 min with high specific activity (0.146 L min·m). Electron paramagnetic resonance (EPR) tests, quenching experiments, electrochemical characterization and X-ray photoelectrons spectroscopy (XPS) tests were applied to clarify the mechanism of BPA degradation. The results unraveled that the activity of the catalyst originated from the heterostructure of LDH and CN with an efficient interfacial electron transfer, which promoted the fast generation of O for rapid pollutant degradation. In addition, the catalyst exhibited excellent applicability in realistic wastewater. This work offered a rational strategy for forming a heterostructure catalyst with a fine interface engineering in actual environmental cleanup.
铁基层状双氢氧化物(LDHs)作为一种有前景的过一硫酸盐(PMS)活化剂受到了广泛关注,但它们仍然受到静电团聚和低电子导电性的限制,效率较低。在此,通过引发柠檬酸(CA)和尿素的层间反应构建了一种MgFeAl层状双氢氧化物/碳氮化物(LDH/CN)异质结构。CA作为结构导向剂调节了MgFeAl-LDH的层间阴离子,这使得在与CN耦合的过程中能够进行界面调控。所获得的LDH/CN异质结构作为一种高效的PMS活化剂,在10分钟内实现了近100%的双酚A(BPA)去除率,具有高比活性(0.146 L min·m)。采用电子顺磁共振(EPR)测试、猝灭实验、电化学表征和X射线光电子能谱(XPS)测试来阐明BPA降解的机制。结果表明,催化剂的活性源于LDH和CN的异质结构以及高效的界面电子转移,这促进了O的快速生成以实现快速的污染物降解。此外,该催化剂在实际废水中表现出优异的适用性。这项工作为在实际环境净化中通过精细的界面工程形成异质结构催化剂提供了一种合理的策略。