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Effect of microstructure and internal stress on hydrogen absorption into Ni thin film electrodes during alkaline water electrolysis

机译:微观结构和内应力对碱性水电解期间Ni薄膜电极氢吸收的影响

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Efforts to improve the cell efficiency of hydrogen production by water electrolysis continue to address the electrochemical kinetics of the oxygen and hydrogen evolution reactions in detail. The objective of this work is to study a parasitic reaction occurring during the hydrogen evolution reaction (HER), namely the absorption of hydrogen atoms into the bulk electrode. Effects of the electrode microstructure and internal stress on this reaction have been addressed as well in this paper. Ni thin film samples were deposited on a Si substrate by sputter deposition with different deposition pressures, resulting in different microstructures and varying levels of internal stress. These microstructures were first analyzed in detail by Transmission Electron Microscopy (TEM). Cathodic chrono-amperometric measurements and cyclic voltammetries have then been performed in a homemade electrochemical cell. These tests were coupled to a multi-beam optical sensor (MOS) in order to obtain in-situ curvature measurements during hydrogen absorption. Indeed, since hydrogen absorption in the thin film geometry results in a constrained volume expansion, internal stress generation during HER can be monitored by means of curvature measurements. Our results show that different levels of internal stress, grain size and twin boundary density can be obtained by varying the deposition parameters. From an electrochemical point of view, this paper highlights the fact that the electrochemical surface mechanisms during HER are the same for all the electrodes, regardless of their microstructure. However it is shown that the absolute amount of hydrogen being absorbed into the Ni thin films increases when the grain size is reduced, due to a higher grain boundaries density which are favourite absorption sites for hydrogen. At the same time, it was concluded that H-2 evolution is favoured at electrodes having a more compressive (i.e. a less tensile) internal stress. Finally, the subtle effect of microstructure on the hydrogen absorption rate will be discussed as well. (C) 2020 Elsevier Ltd. All rights reserved.
机译:通过水电解改善氢气产生的细胞效率的努力继续解决氧气和氢进化反应的电化学动力学。这项工作的目的是研究在氢进化反应(她)期间发生的寄生反应,即氢原子的吸收到堆积电极中。本文还已经解决了电极微观结构和内应力对该反应的影响。通过具有不同沉积压力的溅射沉积在Si衬底上沉积Ni薄膜样品,导致不同的微观结构和变化的内应力水平。首先通过透射电子显微镜(TEM)详细分析这些微观结构。然后在自制电化学电池中进行阴极计数测量测量和循环伏叠。这些测试耦合到多光束光学传感器(MOS),以便在氢吸收期间获得原位曲率测量。实际上,由于薄膜几何形状中的氢吸收导致受约束的体积膨胀,因此可以通过曲率测量来监测她期间的内应力产生。我们的结果表明,通过改变沉积参数,可以获得不同水平的内应力,粒度和双边界密度。从电化学的角度来看,本文突出了与所有电极相同的电化学表面机构,无论其微观结构如何。然而,结果表明,由于更高的晶界密度,所吸收到Ni薄膜中的绝对量被吸收到Ni薄膜中增加,这是氢的吸收性位点。同时,得出结论,H-2进化在具有更压缩(即较小拉伸)内应力的电极上有利于。最后,还将讨论微观结构对氢吸收率的微妙效果。 (c)2020 elestvier有限公司保留所有权利。

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