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用于析氧反应电催化的柱撑Co(II)金属有机框架@NiMn层状双氢氧化物纳米复合材料的界面工程

Interfacial Engineering of Pillared Co(II) Metal-Organic Framework@NiMn-Layered Double Hydroxide Nanocomposite for Oxygen Evolution Reaction Electrocatalysis.

作者信息

Abazari Reza, Ahmadi Torkamani Zahra, Ejsmont Aleksander, Krawczuk Anna, Goscianska Joanna, Varma Rajender S, Sanati Soheila

机构信息

Department of Inorganic Chemistry, Faculty of Science, University of Maragheh, Maragheh 55181-83111, Iran.

Faculty of Chemistry, Department of Chemical Technology, Adam Mickiewicz University, Uniwersytetu Poznańskiego 8, 61-614 Poznań, Poland.

出版信息

Inorg Chem. 2025 Jan 13;64(1):361-370. doi: 10.1021/acs.inorgchem.4c04683. Epub 2025 Jan 1.

Abstract

Clean energy conversion and storage require simple, economical, and effective electrode materials to achieve promising results. The development of high-performance electrocatalysts with adequate stability and cost-effectiveness is essential to ensure low overpotentials toward the oxygen evolution reaction (OER). Herein, a cobalt-based metal-organic framework with 4,4,4-6T14 topology in combination with various ratios of NiMn-layered double hydroxide (Co-MOF@%NiMn-LDH, = 5, 10, 20, and 40%) is applied as an effective electrocatalyst for the oxidation of water. The optimum sample, Co-MOF@20%NiMn-LDH nanocomposite, showed an overpotential of 174 mV at a current density of 10 mA cm and a reduced Tafel slope of 64 mV dec in 1 M KOH, which makes it an excellent candidate, significantly superior to commercial IrO and most MOF- and LDH-based electrocatalysts. Chronopotentiometry tests for the OER over several hours confirmed that these electrocatalysts have been sufficiently stable. Pillared MOFs can obstruct active entities from NiMn-LDH cubic agglomeration, thus facilitating mass transportation and ensuring the continuous exposure of active sites. Accordingly, the synthesized Co-MOF@20%NiMn-LDH composite demonstrates considerable electrocatalytic efficiency and stability toward the OER, as a consequence of the porous structure, external surface area, and synergistic effects among Co-MOF and NiMn-LDH samples.

摘要

清洁能源的转换和存储需要简单、经济且有效的电极材料才能取得理想的成果。开发具有足够稳定性和成本效益的高性能电催化剂对于确保在析氧反应(OER)中具有低过电位至关重要。在此,一种具有4,4,4-6T14拓扑结构的钴基金属有机框架与不同比例的镍锰层状双氢氧化物(Co-MOF@%NiMn-LDH,% = 5、10、20和40%)相结合,被用作水氧化的有效电催化剂。最佳样品Co-MOF@20%NiMn-LDH纳米复合材料在1 M KOH中,在电流密度为10 mA cm时过电位为174 mV,塔菲尔斜率降低至64 mV dec,这使其成为优异的候选材料,明显优于商业IrO以及大多数基于MOF和LDH的电催化剂。对OER进行数小时的计时电位法测试证实了这些电催化剂具有足够的稳定性。柱状MOF可以阻止NiMn-LDH立方团聚中的活性实体,从而促进传质并确保活性位点的持续暴露。因此,由于多孔结构、外表面积以及Co-MOF和NiMn-LDH样品之间的协同效应,合成的Co-MOF@20%NiMn-LDH复合材料对OER表现出相当高的电催化效率和稳定性。

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