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电催化析氧反应中金属硫族化合物结构演变的直接观察

Direct Observation of Structural Evolution of Metal Chalcogenide in Electrocatalytic Water Oxidation.

作者信息

Fan Ke, Zou Haiyuan, Lu Yue, Chen Hong, Li Fusheng, Liu Jinxuan, Sun Licheng, Tong Lianpeng, Toney Michael F, Sui Manling, Yu Jiaguo

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing , Wuhan University of Technology , Wuhan 430070 , P. R. China.

Institute of Microstructure and Properties of Advanced Materials , Beijing University of Technology , Beijing 100124 , P. R. China.

出版信息

ACS Nano. 2018 Dec 26;12(12):12369-12379. doi: 10.1021/acsnano.8b06312. Epub 2018 Dec 6.

Abstract

As one of the most remarkable oxygen evolution reaction (OER) electrocatalysts, metal chalcogenides have been intensively reported during the past few decades because of their high OER activities. It has been reported that electron-chemical conversion of metal chalcogenides into oxides/hydroxides would take place after the OER. However, the transition mechanism of such unstable structures, as well as the real active sites and catalytic activity during the OER for these electrocatalysts, has not been understood yet; therefore a direct observation for the electrocatalytic water oxidation process, especially at nano or even angstrom scale, is urgently needed. In this research, by employing advanced Cs-corrected transmission electron microscopy (TEM), a step by step oxidational evolution of amorphous electrocatalyst CoS into crystallized CoOOH in the OER has been in situ captured: irreversible conversion of CoS to crystallized CoOOH is initiated on the surface of the electrocatalysts with a morphology change via Co(OH) intermediate during the OER measurement, where CoOOH is confirmed as the real active species. Besides, this transition process has also been confirmed by multiple applications of X-ray photoelectron spectroscopy (XPS), in situ Fourier-transform infrared spectroscopy (FTIR), and other ex situ technologies. Moreover, on the basis of this discovery, a high-efficiency electrocatalyst of a nitrogen-doped graphene foam (NGF) coated by CoS has been explored through a thorough structure transformation of CoOOH. We believe this in situ and in-depth observation of structural evolution in the OER measurement can provide insights into the fundamental understanding of the mechanism for the OER catalysts, thus enabling the more rational design of low-cost and high-efficient electrocatalysts for water splitting.

摘要

作为最显著的析氧反应(OER)电催化剂之一,金属硫族化合物因其高OER活性在过去几十年中得到了广泛报道。据报道,在OER之后,金属硫族化合物会发生电子 - 化学转化为氧化物/氢氧化物。然而,这种不稳定结构的转变机制以及这些电催化剂在OER过程中的真正活性位点和催化活性尚未被理解;因此,迫切需要对电催化水氧化过程进行直接观察,特别是在纳米甚至埃尺度上。在本研究中,通过使用先进的Cs校正透射电子显微镜(TEM),原位捕获了非晶态电催化剂CoS在OER中逐步氧化演变为结晶CoOOH的过程:在OER测量期间,CoS通过Co(OH)中间体在电催化剂表面引发不可逆转化为结晶CoOOH,形态发生变化,其中CoOOH被确认为真正的活性物种。此外,该转变过程也通过X射线光电子能谱(XPS)、原位傅里叶变换红外光谱(FTIR)和其他非原位技术的多次应用得到了证实。此外,基于这一发现,通过对CoOOH进行彻底的结构转变,探索了一种由CoS包覆的氮掺杂石墨烯泡沫(NGF)高效电催化剂。我们相信,在OER测量中对结构演变的这种原位和深入观察可以为深入理解OER催化剂的机理提供见解,从而能够更合理地设计用于水分解的低成本和高效电催化剂。

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