首页> 外文期刊>ACS Sustainable Chemistry & Engineering >FeNi3-Fe3O4 Heterogenecaus Nanoparticles Anchored on 2D MOF Nanosheets/1D Matrix as Highly Efficient Bifunctional Electrocatalysts for Wafter Spliting
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FeNi3-Fe3O4 Heterogenecaus Nanoparticles Anchored on 2D MOF Nanosheets/1D Matrix as Highly Efficient Bifunctional Electrocatalysts for Wafter Spliting

机译:FENI3-FE3O4 HENTONECACAUS纳米粒子锚定在2D MOF纳米片/ 1D基质上,作为高效的双功能电催化剂,用于WAFER SPLING

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It is still challengeable to develop a nonprecious bifunctional electrocatalyst for both hydrogen and oxygen evolution reactions (HER and OER), with higher efficiency and superior durability over the benchmark noble-metal-based electrocatalysts. To address such issues, for the first time, we design and synthesize FeNi3-Fe3O4 heterogeneous nanoparticles (NPs) homogenously anchored on a matrix of metal-organic framework (MOF) nanosheets and carbon nanotubes (FeNi3-Fe(3)o(4) NPs/MOT-CNT) by a facile hydrothermal reaction and subsequent partial decomposition of a low-cost and earth-abundant Ni/Fe/C precursor. Due to its unique porous nanoarchitecture constructed by ultrafine nanoparticles anchored on two-dimensional (2D) nanosheets/one-dimensional (1D) CNT matrix, it can be employed as a bifunctional electrocatalyst with superior electrocatalytic activity for water splitting: it delivers a small Tafel slope of 37 mV/dec for OER and requires only a very low overpotential of 234 mV to obtain 10 mA/cm(2); it has a very low overpotential of 108 mV for HER and also shows an ultralow overpotential of 360 mV to reach 10 mA/cm(2) for overall water splitting by outperforming the precious-metal-based electrocatalysts (Pt/C and RuO2; 393 mV at eta(10)). Moreover, it exhibits excellent longterm stability. This work presents a rational nanoarchitecture design and facile fabrication strategy to obtain nonprecious metalbased electrocatalysts with high efficiency and excellent long-lasting abilities.
机译:对于氢气和氧气进化反应(她和伊尔)开发非匮乏的双官能电催化剂仍致力于探究性,具有更高的效率和基于基于基于基于基于基于基于基于基于基于基于基于基于贵金属的电催化剂。要解决此类问题,我们首次设计和合成均匀锚定的FENI3-FE3O4异质纳米颗粒(NPS)均匀锚定在金属 - 有机骨架(MOF)纳米液和碳纳米管(FENI3-FE(3)O(4))上进行锚定NPS / MOT-CNT)通过容易的水热反应和随后的部分分解低成本和土壤 - 丰富的Ni / Fe / C前体。由于其独特的多孔纳米建筑构成,由超细纳米粒子锚定在二维(2D)纳米片/一维(1D)CNT基质上,它可以用作双官能电催化剂,具有优异的水催化活性用于水分裂:它提供了一个小Tafel遮挡37 MV / DEC的斜率,只需要234 mV的非常低的过电位,以获得10 mA / cm(2);它具有108 mV的108 mV的极低,并显示出360 mV的超级,以达到10mA / cm(2),以通过优于基于贵金属的电催化剂(Pt / C和Ruo2; 393 MV在ETA(10))。此外,它表现出优异的稳定性。这项工作介绍了一个理性的纳米建筑设计和轻松的制造策略,以获得具有高效率和优异的持久性能的非佛得多的金属催化剂。

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