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首页> 外文期刊>ACS applied materials & interfaces >Monitoring Local Electric Fields at Electrode Surfaces Using Surface Enhanced Raman Scattering-Based Stark-Shift Spectroscopy during Hydrogen Evolution Reactions
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Monitoring Local Electric Fields at Electrode Surfaces Using Surface Enhanced Raman Scattering-Based Stark-Shift Spectroscopy during Hydrogen Evolution Reactions

机译:在氢气进化反应期间使用表面增强的拉曼散射散射光谱监测电极表面的局部电场

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摘要

We report the use of surface-enhanced Raman scattering (SERS) to measure the vibrational Stark shifts of surface-bound thiolated-benzonitrile molecules bound to an electrode surface during hydrogen evolution reactions (HERs). Here, the electrode surface consists of Au nanoislands deposited both with and without an underlying layer of monolayer graphene on a glass substrate. The Stark shifts observed in the nitrile (C-N) stretch frequency (around 2225 cm(-1)) are used to report the local electric field strength at the electrode surface under electrochemical working conditions. Under positive (i.e., oxidative) applied potentials [vs normal hydrogen electrode (NHE)], we observe blue shifts of up to 7.6 cm(-1), which correspond to local electric fields of 22 mV/cm. Under negative applied potentials (vs NHE), the C N stretch frequency is red-shifted by only about 1 cm(-1). This corresponds to a regime in which the electrochemical current increases exponentially in the hydrogen evolution process. Under these finite electrochemical currents, we estimate the voltage drop across the solution (V = IR). Correcting for this voltage drop results in a highly linear electric field versus applied electrochemical voltage relation. Here, the onset potential for the HER lies around 0.2 V versus NHE and the point of zero charge (PZC) occurs at 0.04 V versus NHE, based on the capacitance voltage (C-V) profile. The solution field is obtained by comparing the C-N stretch frequency in solution with that obtained in air. By evaluating the local electric field strength at the PZC and the onset potential, we can separate the solution field from the reaction field (i.e., electrode field), respectively. At the onset of HER, the solution field is 0.8 mV/cm and the electrode field is -1.2 mV/cm. At higher ion concentrations, we observe similar electric field strengths and more linear E-field versus applied potential behavior because of the relatively low resistance of the solution, which results in negligible voltage drops (V = IR).
机译:我们报告使用表面增强的拉曼散射(SERS)测量在氢进化反应(HERS)期间与电极表面结合的表面结合硫醇苄腈分子的振动STARK偏移。这里,电极表面由Au nanoisland组成,玻璃基板上沉积在玻璃基板上的底层石墨烯层和没有底层。在腈(C-N)拉伸频率(约2225cm(-1))中观察到的STARK偏移用于在电化学工作条件下报告电极表面处的局部电场强度。在阳性(即,氧化)施加的电位[VS正常氢电极(NHE)]下,观察到高达7.6cm(-1)的蓝色偏移,其对应于局部电场为22mV / cm。在负施加电位(VS NHE)下,C n拉伸频率仅为约1cm(-1)。这对应于氢进化过程中电化学电流呈指数增加的状态。在这些有限电化学电流下,我们估计溶液上的电压降(V = IR)。校正该电压降导致高线性电场与施加电化学电压关系。这里,她的起始电位在于0.2V,而不是NHE,并且零电荷(PZC)的点为基于电容电压(C-V)轮廓。通过将C-N拉伸频率与空气中获得的溶液中的C-N拉伸频率进行比较来获得溶液场。通过评估PZC处的局部电场强度和发作电位,可以分别将溶液场分别与反应场(即电极场)分离。在她的开始时,溶液场为0.8mV / cm,电极场为-1.2 mV / cm。在更高的离子浓度下,由于溶液的电阻相对低,我们观察到类似的电场强度和更多的线性E场与施加的电位行为,这导致忽略的电压下降(V = IR)。

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