Carbon Reduction Strategy for the Growth of Ni Nanoparticles on Binary TiO2–Al2O3 for CO2 Methanation

IF 3.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Li Qiu, Yuxin Kang, Yubin Li, Huiqin Wang, Sha Li* and Xiaoliang Yan*, 
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Abstract

Achieving targeted activity and stability in heterogeneous catalysts by concurrently increasing the number of metal active sites and reducing particle size remains a significant challenge. Herein, we effectively design a robust Ni catalyst through a reduction–oxidation–reduction (ROR) strategy, involving an initial carbon reduction, followed by oxidation and a final H2 reduction. The structural evolution of different Ni features was monitored at each stage. Strong metal–support interaction and encapsulated structure on the initially carbon-reduced Ni catalyst were formed and presented inferior CO2 methanation activity. Notably, a high Ni loading of 14.8 wt % on the binary TiO2–Al2O3 support, obtained by the ROR approach, possessed a small particle size of 12.3 ± 3.4 nm and tailored interactions between Ni and the support. Compared to a low-loading Ni/TiO2–Al2O3, the high-loading Ni catalyst exhibited superior activity and stability as well as low active energy for CO2 methanation. The origin for the enhanced catalytic performance was discussed based on the available Ni active sites and metal–support interaction.

Abstract Image

在二元 TiO2-Al2O3 上生长用于二氧化碳甲烷化的镍纳米颗粒的减碳策略
通过同时增加金属活性位点的数量和减小颗粒尺寸来实现多相催化剂的目标活性和稳定性仍然是一个重大挑战。在此,我们通过还原-氧化-还原(ROR)策略有效地设计了一种坚固的Ni催化剂,包括初始的碳还原,随后的氧化和最终的H2还原。在每个阶段监测不同镍特征的结构演变。初始碳还原镍催化剂上形成了较强的金属-载体相互作用和包封结构,其CO2甲烷化活性较差。值得注意的是,通过ROR方法获得的二元TiO2-Al2O3载体上的高Ni负载为14.8 wt %,具有12.3±3.4 nm的小粒径和Ni与载体之间的定制相互作用。与低负载Ni/ TiO2-Al2O3催化剂相比,高负载Ni催化剂表现出更高的活性和稳定性,且CO2甲烷化活性能较低。基于Ni活性位点和金属-载体相互作用,讨论了催化性能增强的原因。
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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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