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Palladium nanoparticles and nanowires deposited electrochemically: AFM and electrochemical characterization

机译:电化学沉积钯纳米粒子和纳米线:AFM和电化学表征

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摘要

Abstract Palladium nanoparticles and nanowires electrochemically deposited onto a carbon surface were studied using cyclic voltammetry, impedance spectroscopy and atomic force microscopy. The ex situ and in situ atomic force microscopy (AFM) topographic images showed that nanoparticles and nanowires of palladium were preferentially electrodeposited to surface defects on the highly oriented pyrolytic graphite surface and enabled the determination of the Pd nanostructure dimensions on the order of 50–150 nm. The palladium nanoparticles and nanowires electrochemically deposited onto a glassy carbon surface behave differently with respect to the pH of the electrolyte buffer solution. In acid or mild acid solutions under applied negative potential, hydrogen can be adsorbed/absorbed onto/into the palladium lattice. By controlling the applied negative potential, different quantities of hydrogen can be incorporated, and this process was followed, analysing the oxidation peak of hydrogen. It is also shown that the growth of the Pd oxide layer begins at negative potentials with the formation of a pre-monolayer oxide film, at a potential well before the hydrogen evolution region. At positive potentials, Pd(0) nanoparticles undergo oxidation, and the formation of a mixed oxide layer was observed, which can act as nucleation points for Pd metal growth, increasing the metal electrode surface coverage. Depending on thickness and composition, this oxide layer can be reversibly reduced. AFM images confirmed that the PdO and PdO2 oxides formed on the surface may act as nucleation points for Pd metal growth, increasing the metal electrode surface coverage.
机译:摘要利用循环伏安法,阻抗谱和原子力显微镜研究了电化学沉积在碳表面的钯纳米粒子和纳米线。异位和原位原子力显微镜(AFM)地形图显示,钯的纳米粒子和纳米线优先电沉积到高度定向的热解石墨表面的表面缺陷上,从而能够确定50-150量级的Pd纳米结构尺寸纳米电化学沉积在玻璃碳表面上的钯纳米粒子和纳米线相对于电解质缓冲溶液的pH表现不同。在施加负电势的酸性或弱酸性溶液中,氢可以吸附/吸收到钯晶格上/之中。通过控制施加的负电势,可以掺入不同数量的氢,然后进行此过程,分析氢的氧化峰。还显示出,Pd氧化物层的生长开始于负电势,并且在氢析出区域之前的电势处形成前单层氧化物膜。在正电势下,Pd(0)纳米粒子发生氧化,并观察到混合氧化物层的形成,该层可作为Pd金属生长的成核点,从而增加金属电极的表面覆盖率。取决于厚度和组成,可以可逆地减少该氧化物层。 AFM图像证实,表面上形成的PdO和PdO2氧化物可以充当Pd金属生长的成核点,从而增加金属电极的表面覆盖率。

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