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独特集成的 Fe 掺杂 Ni(OH) 纳米片用于高效的氧气和氢气析出反应。

Uniquely integrated Fe-doped Ni(OH) nanosheets for highly efficient oxygen and hydrogen evolution reactions.

机构信息

National Institute for Advanced Materials, School of Materials Science and Engineering, Nankai University, Tongyan Road 38, Haihe Educational Park, Tianjin 300353, China.

出版信息

Nanoscale. 2018 Jun 14;10(22):10620-10628. doi: 10.1039/c8nr01655k. Epub 2018 May 30.

Abstract

Developing high-efficiency electrocatalysts for both oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) is vital for the production of hydrogen on a large scale by electrocatalytic splitting of water. Herein, Fe-doped Ni(OH) nanosheets directly grown on commercial Ni foam (FeNiOH/NF) were fabricated through a facile hydrothermal method in (NH)SO aqueous solution containing iron salts. The integrated architecture with hierarchical pores is beneficial for exposing sufficient catalytically active sites and providing evaluated structural and electrical properties. In particular, the Fe-induced partial-charge-transfer greatly modifies the electronic structure of Ni(OH), which evidently promotes the electrocatalytic activity of the as-fabricated FeNiOH/NF for OER and HER. Thus, as an electrocatalyst for OER, FeNiOH/NF exhibits excellent activity with overpotentials of 271 and 318 mV to deliver current densities of 20 and 100 mA cm, respectively, with a small Tafel slope of 72 mV dec in 1.0 M KOH, demonstrating the very high level of novelty and sufficient improvement over the current state-of-the-art IrO electrocatalyst. Most importantly, there is an increase in overpotential by only 23 mV during continuous reaction for over 20 h at an applied potential of 1.62 V to deliver current density of 500 mA cm. The as-fabricated electrocatalyst also enables high HER activity with robust stability. Finally, an overall water splitting current density of 10 mA cm can be obtained at a cell voltage of 1.67 V in a two-electrode alkaline electrolyzer using FeNiOH/NF as both anode and cathode, along with impressive operation stability. This development with significant over the state-of-the-art IrO electrocatalyst can be widely extended to large-scale fabrication of versatile electrocatalysts for efficient water splitting technology.

摘要

用于氧气析出反应(OER)和氢气析出反应(HER)的高效电催化剂对于通过水电解大规模生产氢气至关重要。在此,通过在含有铁盐的(NH)SO 水溶液中进行简便的水热法,直接在商业 Ni 泡沫(FeNiOH/NF)上制备了 Fe 掺杂的 Ni(OH)纳米片。具有分级孔的集成结构有利于暴露足够的催化活性位点并提供评价的结构和电气性能。特别是,Fe 引起的部分电荷转移极大地改变了 Ni(OH)的电子结构,这明显促进了所制备的 FeNiOH/NF 对 OER 和 HER 的电催化活性。因此,作为 OER 的电催化剂,FeNiOH/NF 表现出优异的活性,其在 1.0 M KOH 中提供 20 和 100 mA cm 电流密度时的过电势分别为 271 和 318 mV,具有 72 mV dec 的小 Tafel 斜率,展示了非常高的新颖性水平和相对于当前最先进的 IrO 电催化剂的充分改进。最重要的是,在 1.62 V 的施加电位下,连续反应超过 20 小时时,过电势仅增加 23 mV 即可达到 500 mA cm 的电流密度。所制备的电催化剂还具有高 HER 活性和强稳定性。最后,在使用 FeNiOH/NF 作为阳极和阴极的两电极碱性电解槽中,可在 1.67 V 的电池电压下获得 10 mA cm 的整体水分解电流密度,具有令人印象深刻的操作稳定性。这种相对于最先进的 IrO 电催化剂的显著发展可以广泛扩展到用于高效水分解技术的多功能电催化剂的大规模制造。

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