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Cyanide adsorption on gold electrodes: a combined surface enhanced Raman spectroscopy and density functional theory study

机译:金电极上氰化物的吸附:表面增强拉曼光谱和密度泛函理论的组合研究

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摘要

A combined SERS and DFT study of cyanide adsorption on a gold electrode is presented. From our analysis, the high-frequency mode at ~2100 cm~(-1) is ascribed to the C–N stretching frequency at (100) and (110) sites. The lower frequency modes at ~370 and ~300 cm~(-1) are ascribed to the Au–CN stretching and bending modes, respectively. The Stark tuning slopes of these modes agree well with the DFT computations. The bending mode at 300 cm~(-1) has a very small Stark tuning slope of ~4 cm~(-1) V~(-1), experimentally, compared to ~1 cm~(-1) V~(-1), computationally. The Au–CN stretching frequency has a Stark tuning slope of ~15 cm~(-1) V~(-1), experimentally, compared to 16–22 cm~(-1) V~(-1), computationally. The positive Stark tuning slopes suggest that cyanide adsorbs as an anion, with a bond polarity between that of the Au–Cl and Au–Br surface bonds. The anionic character of the Au–CN bond is also confirmed by different charge analyses based on the DFT computations. The ordering in binding strength on the three different surfaces is the same as the ordering in bond ionicity. The C–N stretching frequency has two different Stark tuning slopes in the SERS experiments: ~14 cm~(-1) V~(-1) in the more negative potential region corresponding to cyanide adsorption, and ~35 cm~(-1) V~(-1) in the more positive potential region corresponding to gold dissolution. The computational result of ~8 cm~(-1) V~(-1) agrees well with the lower Stark tuning slope. The higher Stark tuning slope is presumably related to the formation of gold–cyanide complexes in the double layer.
机译:结合SERS和DFT研究了氰化物在金电极上的吸附。根据我们的分析,在〜2100 cm〜(-1)处的高频模式归因于在(100)和(110)处的C–N拉伸频率。 〜370和〜300 cm〜(-1)处的低频模式分别归因于Au-CN的拉伸和弯曲模式。这些模式的Stark调谐斜率与DFT计算非常吻合。在实验中,与〜1 cm〜(-1)V〜(-)相比,在300 cm〜(-1)处的弯曲模式的Stark调谐斜率很小,约为〜4 cm〜(-1)V〜(-1)。 1),计算上。在实验中,Au–CN拉伸频率的Stark调谐斜率为〜15 cm〜(-1)V〜(-1),而在计算上为16–22 cm〜(-1)V〜(-1)。正的Stark调谐斜率表明氰化物以阴离子的形式吸附,其键极性在Au–Cl和Au–Br表面键之间。基于DFT计算的不同电荷分析也证实了Au-CN键的阴离子特征。在三个不同表面上的结合强度的顺序与键离子性的顺序相同。在SERS实验中,C–N的拉伸频率具有两种不同的Stark调谐斜率:对应于氰化物吸附的负电势较大区域中的〜14 cm〜(-1)V〜(-1),以及〜35 cm〜(-1 )V〜(-1)在对应于金溶解的更正电势区域中。 〜8 cm〜(-1)V〜(-1)的计算结果与较低的Stark调谐斜率非常吻合。较高的Stark调谐斜率可能与双层中金-氰化物络合物的形成有关。

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