首页> 外文期刊>Applied Surface Science >Preparation of Pt-Co nanoparticles by galvanostatic pulse electrochemical codeposition on in situ electrochemical reduced graphene nanoplates based carbon paper electrode for oxygen reduction reaction in proton exchange membrane fuel cell
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Preparation of Pt-Co nanoparticles by galvanostatic pulse electrochemical codeposition on in situ electrochemical reduced graphene nanoplates based carbon paper electrode for oxygen reduction reaction in proton exchange membrane fuel cell

机译:质子交换膜燃料电池原位电化学还原石墨烯纳米板碳纸电极上的恒电流脉冲电化学共沉积法制备Pt-Co纳米粒子

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摘要

Nanocomposite films of Pt-Co nanoparticles deposited on graphene nanoplate based gas diffusion layer electrode are fabricated via an electrochemical route involving a series of electrochemical process. Pt-Co nanoparticles of 11.37 nm in average size are prepared by galvanostatic codeposition in 0.5 M NaCl at PH of 2.5 at 300mAcm~(-2) on the surface of in situ reduced graphene nanoplates on carbon paper. The topographical features, structure, morphology and composition of the prepared film samples are characterized by Atomic Force microscopy, Raman Spectroscopy, FTIR analysis, X-ray Diffraction, FESEM and EDS. At the same time, the catalytic activities of prepared electrodes for the oxygen reduction reaction are evaluated through cyclic voltammetry, linear sweep voltammetry and chronoamperometry and electrochemical impedance spectroscopy measurements. Raman spectroscopy measurements confirmed the graphitic structure of the produced graphene nanoplates. The nanoparticles in the film were observed to be uniform spherical objects and well distributed. Catalytic properties of Pt-Co/GNP/GDL electrode were compared with Pt/C/GDL using half cell polarization measurements based on both mass activity and specific activity. The as prepared Pt-Co/GNP/GDL electrode exhibits high catalytic activity for the ORR, which may be attributed to structural changes caused by alloying and the high specific surface area of graphene nanoplates catalyst support. The mass activity peak current is found to be as high as 728.25 mA mg_(Pt)~(-1).
机译:通过涉及一系列电化学过程的电化学途径制备沉积在基于石墨烯纳米板的气体扩散层电极上的Pt-Co纳米颗粒的纳米复合膜。通过在碳纸上原位还原石墨烯纳米板的表面上,在0.5 mA NaCl中以300 mAcm〜(-2)在PH为2.5的0.5 M NaCl中进行恒流共沉积,制备平均尺寸为11.37 nm的Pt-Co纳米颗粒。通过原子力显微镜,拉曼光谱,FTIR分析,X射线衍射,FESEM和EDS对制备的薄膜样品的形貌特征,结构,形态和组成进行了表征。同时,通过循环伏安法,线性扫描伏安法和计时安培法以及电化学阻抗谱测量,评估了制备的电极对氧还原反应的催化活性。拉曼光谱测量证实了所生产的石墨烯纳米板的石墨结构。观察到膜中的纳米颗粒是均匀的球形物体并且分布均匀。使用基于质量活度和比活度的半电池极化测量,将Pt-Co / GNP / GDL电极的催化性能与Pt / C / GDL进行了比较。所制备的Pt-Co / GNP / GDL电极对ORR表现出高催化活性,这可能归因于合金化和石墨烯纳米板催化剂载体的高比表面积所引起的结构变化。发现质量活度峰值电流高达728.25 mA mg_(Pt)〜(-1)。

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