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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Ubiquitous strategy for probing ATR surface-enhanced infrared absorption at platinum group metal-electrolyte interfaces
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Ubiquitous strategy for probing ATR surface-enhanced infrared absorption at platinum group metal-electrolyte interfaces

机译:在铂族金属-电解质界面探测ATR表面增强红外吸收的普遍策略

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A versatile two-step wet process to fabricate Pt, Pd, Rh, and Ru nanoparticle films (simplified as nanofilms hereafter) for in situ attenuated total reflection Fourier transform infrared (ATR-FTIR) study of electrochemical interfaces is presented, which incorporates an initial chemical deposition of a gold nanofilm on the basal plane of a silicon prism with the subsequent electrodepostion of desired platinum group metal overlayers. Galvanostatic electrodeposition of Pt, Rh, and Pd from phosphate or perchloric acid electrolytes, or potentiostatic electrodeposition of Ru from a sulfuric acid electrolyte, yields sufficiently "pinhole-free" overlayers as evidenced by electrochemical and spectroscopic characterizations. The Pt group metal nanofilms thus obtained exhibit strongly enhanced IR absorption. In contrast to the corresponding metal films electrochemically deposited directly on glassy carbon and bulk metal electrodes, the observed enhanced absorption for the probe molecule CO exhibits normal unipolar band shapes. Scanning tunneling microscopic (STM) images reveal that fine nanoparticles of Pt group metals are deposited around wavy and stepped bunches of Au nanoparticles of relatively large sizes. This ubiquitous strategy is expected to open a wide avenue for extending ATR surface-enhanced IR absorption spectroscopy to explore molecular adsorption and reactions on technologically important transition metals, as exemplified by successful real-time spectroscopic and electrochemical monitoring of the oxidation of CO at Pd and that of methanol at Pt nanofilm electrodes. The spectral features of free water molecules coadsorbed with CO on Pt, Pd, Rh, and Ru are also discussed.
机译:提出了一种通用的两步湿法工艺,用于制造Pt,Pd,Rh和Ru纳米颗粒薄膜(以下简称为纳米薄膜),用于电化学界面的原位衰减全反射傅里叶变换红外光谱(ATR-FTIR)研究,该方法结合了初始方法在硅棱镜的基面上化学沉积金纳米膜,随后在电极上沉积所需的铂族金属覆盖层。磷酸盐或高氯酸电解质对Pt,Rh和Pd的恒电流电沉积,或硫酸电解质对Ru的恒电位电沉积,可产生足够的“无针孔”叠层,如电化学和光谱表征所示。由此获得的Pt族金属纳米膜表现出大大增强的IR吸收。与直接电化学沉积在玻璃碳和块状金属电极上的相应金属膜相反,观察到的探针分子CO吸收增强表现出正常的单极带形状。扫描隧道显微镜(STM)图像显示,Pt类金属的细纳米颗粒沉积在相对较大尺寸的波浪形和阶梯形束金纳米颗粒周围。这种普遍存在的策略有望为扩展ATR表面增强的IR吸收光谱学开辟广阔的道路,以探索在技术上重要的过渡金属上的分子吸附和反应,例如,成功地通过实时光谱学和电化学监测了Pd和Pb上的CO氧化。铂纳米膜电极上的甲醇还讨论了与水共吸附在Pt,Pd,Rh和Ru上的自由水分子的光谱特征。

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