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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Controllable optical transitions of amorphous Mg and Mg-Ni films via electrochemical methods
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Controllable optical transitions of amorphous Mg and Mg-Ni films via electrochemical methods

机译:通过电化学方法控制非晶态Mg和Mg-Ni薄膜的可控光学跃迁

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摘要

Amorphous Mg and MgNix (0.03 <= x <= 0.30) thin films capped with Pd were prepared by magnetron co-sputtering, and their hydrogen-induced optical transitions were investigated via electrochemical charging and discharging in KOH electrolyte solution. Repetitive transitions, up to dozens of times between the mirror state and transparent state, are achieved in these amorphous Mg and MgNix thin films even though some performance degeneration occurs during cycling. These deteriorations are mainly attributed to the breakdown of the film structure, which is caused by both a large change in film volume during cycling and the corrosive attack of the KOH electrolyte. In addition, calculations based on the electrochemical stripping method indicate that the hydrogen diffusion coefficient is significantly increased by amorphization; however, it is only slightly improved by the addition of Ni. Among the prepared amorphous films, MgNi0.09 film shows the largest hydrogen diffusion coefficient, namely, 2.64 x 10(-13) cm(2) s(-1). More importantly, the optical properties of the amorphous Mg and MgNix films are readily manipulated in the charging process, especially under a small charging current density, where there is a linear correlation between charging capacity and transmittance. The tunable optical properties obtained in the present study will greatly expand the application fields of Mg-based thin films.
机译:通过磁控共溅射制备了覆盖有Pd的非晶Mg和MgNix(0.03 <= x <= 0.30)薄膜,并通过在KOH电解质溶液中的电化学充放电研究了氢诱导的光学跃迁。在这些非晶态Mg和MgNix薄膜中,即使在循环过程中会发生一些性能下降,也可以在镜面状态和透明状态之间进行多达几十次的重复过渡。这些劣化主要归因于膜结构的破坏,这是由循环期间膜体积的大变化和KOH电解质的腐蚀侵蚀两者引起的。另外,基于电化学汽提方法的计算表明,氢的扩散系数由于非晶化而显着增加;但是,通过添加镍只能稍微改善它。在制备的非晶膜中,MgNi0.09膜显示最大的氢扩散系数,即2.64 x 10(-13)cm(2)s(-1)。更重要的是,非晶态Mg和MgNix薄膜的光学特性在充电过程中易于控制,尤其是在小充电电流密度下,充电容量和透射率之间存在线性关系。本研究获得的可调光学性能将极大地扩展镁基薄膜的应用领域。

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