非热等离子体耦合Co-Ni二元金属氧化物纳米片催化剂对苯的催化降解

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Zhi Jiang , Dongxu Fang , Yuting Liang , Yaoyu He , Hisahiro Einaga , Wenfeng Shangguan
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引用次数: 3

摘要

非热等离子体(NTP)已被证明是一种在环境条件下降解挥发性有机物的有前途的技术。然而,NTP中VOCs降解的关键挑战之一是其相对较低的矿化率,这需要通过引入催化剂来解决。因此,催化剂的设计与优化已成为NTP偶联催化研究的重点。本工作采用微波法合成了一系列二维纳米片Co-Ni金属氧化物,并在NTP催化偶联体系中对苯的催化氧化进行了研究。其中,当苯去除效率(REbenzen)达到99%以上时,Co2Ni1Ox实现了60%的二氧化碳(CO2)选择性(SCO2),与在相同输入功率下没有任何催化剂时获得的CO2选择性(38%)相比,这是一个显著的提高。更有趣的是,这种SCO2也明显高于单一金属氧化物NiO或Co3O4的SCO2,后者仅为40%左右。这种二元金属氧化物催化剂的这种改进的性能独特地归因于Co2Ni1Ox催化剂中Co和Ni的协同作用。发现Co2Ni1Ox的引入显著促进了丙烯醛的生成,丙烯醛是先前报道的NTP单独系统中发现的关键中间体之一,这表明促进了苯环开环反应。与单金属氧化物NiO和Co3O4相比,Co2Ni1Ox还表现出更高的活性氧比例、更好的氧迁移率和更强的低温氧化还原能力。上述因素导致Co2Ni1Ox在NTP偶联去除苯中的催化性能提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Catalytic degradation of benzene over non-thermal plasma coupled Co-Ni binary metal oxide nanosheet catalysts

Catalytic degradation of benzene over non-thermal plasma coupled Co-Ni binary metal oxide nanosheet catalysts

Non-thermal plasma (NTP) has been demonstrated as one of the promising technologies that can degrade volatile organic compounds (VOCs) under ambient condition. However, one of the key challenges of VOCs degradation in NTP is its relatively low mineralization rate, which needs to be addressed by introducing catalysts. Therefore, the design and optimization of catalysts have become the focus of NTP coupling catalysis research. In this work, a series of two-dimensional nanosheet Co-Ni metal oxides were synthesized by microwave method and investigated for the catalytic oxidation of benzene in an NTP-catalysis coupling system. Among them, Co2Ni1Ox achieves 60% carbon dioxide (CO2) selectivity (SCO2) when the benzene removal efficiency (REbenzene) reaches more than 99%, which is a significant enhancement compared with the CO2 selectivity obtained without any catalysts (38%) under the same input power. More intriguingly, this SCO2 is also significantly higher than that of single metal oxides, NiO or Co3O4, which is only around 40%. Such improved performance of this binary metal oxide catalyst is uniquely attributed to the synergistic effects of Co and Ni in Co2Ni1Ox catalyst. The introduction of Co2Ni1Ox was found to promote the generation of acrolein significantly, one of the key intermediates found in NTP alone system reported previously, suggest the benzene ring open reaction is promoted. Compared with monometallic oxides NiO and Co3O4, Co2Ni1Ox also shows higher active oxygen proportion, better oxygen mobility, and stronger low-temperature redox capability. The above factors result in the improved catalytic performance of Co2Ni1Ox in the NTP coupling removal of benzene.

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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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