壳厚度对Core@shell Fe3O4@CoFe2O4纳米颗粒析氧活性的影响

IF 7 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Iryna Makarchuk, Benjamin Rotonnelli, Lisa Royer, Simon Hettler, Jean-Jacques Gallet, Fabrice Bournel, Julie Guehl, Amandine Brige, Andrea Zitolo, Gwénaëlle Kéranguéven, Antoine Bonnefont, Raul Arenal, Elena Savinova, Tristan Asset* and Benoit P. Pichon*, 
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引用次数: 0

摘要

水裂解制氢需要高效的电催化剂来降低阳极析氧反应(OER)和阴极析氢反应(HER)的过电位。在这项研究中,我们研究了表观壳厚度对Fe3O4@CoFe2O4 core@shell纳米颗粒电催化活性的影响,这是一种高效的无贵金属OER催化剂。通过种子介导的钴铁氧体晶体生长在原始磁铁矿纳米颗粒上,合成了3种不同类型的core@shell纳米颗粒。对合成条件进行了调整,以调节壳的结构。重要的是,所有提出的core@shell结构在电化学测试中都表现出优异的稳定性,这对最终的工业应用非常重要。我们发现Fe3O4@CoFe2O4 core@shell纳米粒子的电催化性能受壳结构的显著影响。利用原位软x射线吸收光谱(XAS)研究了core@shell纳米颗粒活性增强的协同氧化还原机制。XAS结果表明,Co(II)和Fe(II)之间发生协同氧化还原相互作用,因此需要薄而连续的CoFe2O4壳层。总体而言,本研究为OER高效core@shell纳米催化剂的设计提供了见解,为改善地球丰富的过渡金属氧化物(TMO)催化剂的性能提供了一条途径,以实现可持续的氢气生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of Shell Thickness on the Oxygen Evolution Activity of Core@shell Fe3O4@CoFe2O4 Nanoparticles

Effect of Shell Thickness on the Oxygen Evolution Activity of Core@shell Fe3O4@CoFe2O4 Nanoparticles

Hydrogen production via water splitting requires efficient electrocatalysts to reduce the overpotential of the anodic oxygen evolution reaction (OER) and cathodic hydrogen evolution reaction (HER). In this study, we investigated the influence of apparent shell thickness on the electrocatalytic activity of Fe3O4@CoFe2O4 core@shell nanoparticles, an efficient noble metal-free OER catalyst in alkaline media. Three different types of core@shell nanoparticles were synthesized by the seed-mediated crystal growth of cobalt ferrite on pristine magnetite nanoparticles. The synthesis conditions were adapted to modulate the shell structure. Importantly, all proposed core@shell structures showed excellent stability during electrochemical testing, which is important for eventual industrial applications. We showed that the electrocatalytic performance of Fe3O4@CoFe2O4 core@shell nanoparticles was significantly influenced by the shell structure. The cooperative redox mechanism proposed to be the origin of the activity enhancement in core@shell nanoparticles was investigated by using in situ soft X-ray absorption spectroscopy (XAS). XAS revealed that cooperative redox interactions occurred between Co(II) and Fe(II) residing in close proximity at the core/shell interface, hence requiring a thin and continuous CoFe2O4 shell. Overall, this study provides insights into the design of efficient core@shell nanocatalysts for the OER, offering a path toward improving the performance of earth-abundant transition metal-oxide (TMO) catalysts for sustainable H2 production.

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来源期刊
Chemistry of Materials
Chemistry of Materials 工程技术-材料科学:综合
CiteScore
14.10
自引率
5.80%
发文量
929
审稿时长
1.5 months
期刊介绍: The journal Chemistry of Materials focuses on publishing original research at the intersection of materials science and chemistry. The studies published in the journal involve chemistry as a prominent component and explore topics such as the design, synthesis, characterization, processing, understanding, and application of functional or potentially functional materials. The journal covers various areas of interest, including inorganic and organic solid-state chemistry, nanomaterials, biomaterials, thin films and polymers, and composite/hybrid materials. The journal particularly seeks papers that highlight the creation or development of innovative materials with novel optical, electrical, magnetic, catalytic, or mechanical properties. It is essential that manuscripts on these topics have a primary focus on the chemistry of materials and represent a significant advancement compared to prior research. Before external reviews are sought, submitted manuscripts undergo a review process by a minimum of two editors to ensure their appropriateness for the journal and the presence of sufficient evidence of a significant advance that will be of broad interest to the materials chemistry community.
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