纳米镍基催化剂中Cu在乙二醇水相重整中的作用研究

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yifan Jin, Shuchao Ge, Chuo Du, Hongfei Xiao, Chao Gai, Jianghao Zhang* and Changbin Zhang*, 
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引用次数: 0

摘要

氢是一种具有高质量能量密度的清洁能源,需要探索可持续的生产方法,如生物质原料的水相重整(APR)。在APR反应中,镍基催化剂表现出良好的活性;然而,氢化副反应在整个反应梯度中占据主导地位,消耗产生的氢。本研究在乙二醇(EG)的APR中合成了Cu修饰的Ni催化剂,并对其进行了评价,旨在开发一种选择性的Ni基APR催化剂,并在纳米尺度上阐明Cu的作用。在Ni表面加入适量的Cu,在保持产氢速率的情况下,0Cu/Ni的氢选择性从40%提高到30Cu/Ni的71%,而当Cu含量超过最佳值时,活性降低。动力学分析和互补表征技术表明,Cu与Ni基体的结合导致Cu - Ni合金在纳米尺度上的形成,金属表面的电子轨道发生杂化,降低了Ni的电子密度,改变了其对特定官能团的亲和力。因此,乙二醇的吸附构型从Ni上的氧位点切换到cu修饰的Ni上的碳位点,这可能导致C-C键裂解和形成的中间体加氢的明显障碍。Cu的加入抑制了甲烷化反应,提高了氢的选择性,保持了氢的产率。本研究对未来设计APR反应选择性产氢催化剂有一定的指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Elucidating the Role of Cu in Ni-Based Catalyst at Nanoscale in Aqueous-Phase Reforming of Ethylene Glycol

Elucidating the Role of Cu in Ni-Based Catalyst at Nanoscale in Aqueous-Phase Reforming of Ethylene Glycol

Hydrogen is a clean energy source with high mass-based energy density, necessitating the exploration of sustainable production methods, such as aqueous-phase reforming (APR) of biomass-derived feedstocks. In the APR reaction, the Ni-based catalysts have shown promising activity; however, the hydrogenation side reactions prevail throughout the whole reaction gradient, consuming the produced hydrogen. In this study, the Cu-modified Ni catalysts were synthesized and evaluated in APR of ethylene glycol (EG), aiming at the development of a selective Ni-based APR catalyst and elucidation of the role of Cu at the nanoscale. Incorporating an appropriate amount of Cu on Ni enhanced the hydrogen selectivity from 40% for 0Cu/Ni to 71% for 30Cu/Ni with maintained hydrogen production rate, while the activity diminished when the Cu content exceeded the optimal. Kinetic analyses and complementary characterization techniques demonstrated that Cu incorporation into the Ni matrix resulted in the formation of Cu–Ni alloy at the nanoscale and hybridization of the electronic orbital at the metal surface, decreasing the electron density of Ni to change its affinity to the specific functional groups. Consequently, the adsorption configuration of ethylene glycol was switched from the oxygen site on Ni to the carbon site on Cu-modified Ni, which may lead to the distinct barrier for both C–C bond cleavage and the hydrogenation of the formed intermediates. The methanation was inhibited by Cu incorporation with promoted hydrogen selectivity and maintained hydrogen productivity. This study may contribute to the future catalyst design for selective hydrogen production in APR reactions.

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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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