Synthesis of Ni@SiC/CNFs Composite and Its Microwave-Induced Catalytic Activity

C Pub Date : 2024-08-09 DOI:10.3390/c10030072
Haibo Ouyang, Jiaqi Liu, Cuiyan Li, Leer Bao, Tianzhan Shen, Yanlei Li
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Abstract

Carbon nanomaterials are promising microwave catalytic materials due to their abundant inhomogeneous interfaces capable of producing ideal interfacial polarization and multiple relaxation, which are favorable for microwave attenuation and dissipation. However, the microwave absorption performance of carbon materials is not ideal in practical applications due to poor impedance matching and single dielectric loss. To solve this problem, a ternary system of “carbon-magnetic” Ni@SiC/CNFs (C/Ni, C/SiC) composites was synthesized by electrostatic spinning, and they efficiently degraded methylene blue under microwave radiation. The results imply that the catalyst Ni@SiC/CNFs with a double-shell structure gave a 99.99% removal rate in 90 s for the degradation of methylene blue under microwave irradiation, outperforming the C/Ni and C/SiC and most other reported catalysts in similar studies. On the one hand, the possible mechanism of the methylene blue degradation should be ascribed to the fact that the double-shell structure increases the polarization source of the material, resulting in excellent microwave absorption properties; and on the other, the in situ generation of ·OH and O2− active species under microwave radiation and the synergistic coupling effect of metal plasma greatly improved the degradation efficiency of methylene blue. The findings of this study could provide a valuable reference for the green degradation of industrial dye wastewater and its sustainable development process.
Ni@SiC/CNFs 复合材料的合成及其微波催化活性
碳纳米材料具有丰富的非均质界面,能够产生理想的界面极化和多重弛豫,有利于微波衰减和耗散,因此是一种前景广阔的微波催化材料。然而,由于阻抗匹配性差和单一介质损耗,碳材料的微波吸收性能在实际应用中并不理想。为解决这一问题,研究人员通过静电纺丝合成了 "碳磁 "Ni@SiC/CNFs(C/Ni、C/SiC)三元复合材料体系,并在微波辐射下高效降解亚甲基蓝。结果表明,具有双壳结构的催化剂 Ni@SiC/CNFs 在微波辐照下 90 秒内对亚甲基蓝的降解去除率达到 99.99%,优于 C/Ni 和 C/SiC,也优于类似研究中报道的大多数其他催化剂。亚甲基蓝降解的可能机理一方面应归因于双壳结构增加了材料的极化源,使其具有优异的微波吸收性能;另一方面,在微波辐射下原位生成的-OH 和 O2- 活性物种以及金属等离子体的协同耦合效应大大提高了亚甲基蓝的降解效率。该研究结果可为工业染料废水的绿色降解及其可持续发展过程提供有价值的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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