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一步法在 FeNi 合金箔上原位生长铁镍硫化纳米片:用于水氧化的高性能自支撑电极。

One-Step In Situ Growth of Iron-Nickel Sulfide Nanosheets on FeNi Alloy Foils: High-Performance and Self-Supported Electrodes for Water Oxidation.

机构信息

Division of Nanomaterials and Chemistry, Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei, Anhui, 230026, China.

出版信息

Small. 2017 May;13(18). doi: 10.1002/smll.201604161. Epub 2017 Mar 10.

Abstract

Efficient and durable oxygen evolution reaction (OER) catalysts are highly required for the cost-effective generation of clean energy from water splitting. For the first time, an integrated OER electrode based on one-step direct growth of metallic iron-nickel sulfide nanosheets on FeNi alloy foils (denoted as FeNi S /FeNi) is reported, and the origin of the enhanced OER activity is uncovered in combination with theoretical and experimental studies. The obtained FeNi S /FeNi electrode exhibits highly catalytic activity and long-term stability toward OER in strong alkaline solution, with a low overpotential of 282 mV at 10 mA cm and a small Tafel slope of 54 mV dec . The excellent activity and satisfactory stability suggest that the as-made electrode provides an attractive alternative to noble metal-based catalysts. Combined with density functional theory calculations, exceptional OER performance of FeNi S /FeNi results from a combination of efficient electron transfer properties, more active sites, the suitable O evolution kinetics and energetics benefited from Fe doping. This work not only simply constructs an excellent electrode for water oxidation, but also provides a deep understanding of the underlying nature of the enhanced OER performance, which may serve as a guide to develop highly effective and integrated OER electrodes for water splitting.

摘要

高效且耐用的析氧反应 (OER) 催化剂对于从水分解中经济有效地产生清洁能源具有很高的要求。本文首次报道了一种基于一步直接生长在 FeNi 合金箔上的金属铁-镍硫化物纳米片的集成 OER 电极(表示为 FeNi S /FeNi),并结合理论和实验研究揭示了增强 OER 活性的起源。所获得的 FeNi S /FeNi 电极在强碱性溶液中对 OER 表现出高度的催化活性和长期稳定性,在 10 mA cm 时的过电位仅为 282 mV,塔菲尔斜率小至 54 mV dec 。优异的活性和令人满意的稳定性表明,所制备的电极提供了一种有吸引力的贵金属基催化剂替代方案。结合密度泛函理论计算,FeNi S /FeNi 的出色 OER 性能源于高效的电子转移特性、更多的活性位点、得益于 Fe 掺杂的合适的 O 演化动力学和能量学的结合。这项工作不仅简单地构建了一种用于水氧化的优异电极,而且还深入了解了增强 OER 性能的基础性质,这可能为开发用于水分解的高效且集成的 OER 电极提供指导。

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