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Oxygen reduction at the platinum/Nafion(RTM) interface: Electrode kinetics and mass transport.

机译:铂/ Nafion(RTM)界面处的氧气还原:电极动力学和质量传输。

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Research in solid polymer electrolyte fuel cells is gaining momentum because of the prospects of attaining high energy efficiencies and power densities, essential for transportation and space applications. The most advanced solid polymer electrolytes for these fuel cells are the perfluorosulfonate ionomers (PFSIs) such as duPont's Nafion and the Dow PFSIs. The high oxygen solubility, chemical stability, proton conductivity and permselectivity exhibited by Nafion and the Dow PFSI's make them ideal candidates as electrolytes for fuel cells. Furthermore, the minimal anion adsorption on electrodes from fluorinated acids enhances oxygen reduction kinetics.; The primary objectives of this work were to determine the concentration and diffusion coefficient of oxygen in Nafion, and the electrode kinetic parameters for the reduction of oxygen at the Pt/Nafion interface under totally solid-state conditions (i.e. no contacting liquid electrolyte). Cyclic voltammetric and potentiostatic transient measurements were made at the Pt/Nafion interface. Slow sweep voltammograms yielded Tafel parameters for oxygen reduction. From the two-section Tafel plot, the calculated exchange current densities were found to be higher than those obtained at any other Pt/acid interface. From an analysis of the transients, the values of oxygen solubility and diffusion coefficient in Nafion were determined.; Electrochemical impedance spectroscopic (EIS) investigations were then used to study oxygen reduction under lower humidification conditions. EIS clearly permits the discrimination of electrode kinetics, mass transport of O{dollar}sb2{dollar} and the electrical characteristics of the membrane.; A temperature-dependence study in the range of 30{dollar}spcirc{dollar}C to 80{dollar}spcirc{dollar}C yielded the activation energy for oxygen reduction at the Pt/Nafion interface. The diffusion coefficient of oxygen in Nafion increases with temperature while its solubility decreases. The pressure-dependence of oxygen reduction kinetics shows that the reaction order of oxygen is unity. Further, it was shown that oxygen dissolution follows Henry's isotherm while the diffusion coefficient of oxygen is invariant with pressure.; The effect of temperature and pressure on oxygen reduction kinetics was also studied at porous gas-diffusion electrodes. Activation energies for oxygen reduction and reaction orders for oxygen were compared with the microelectrode investigations. There is virtually no difference between the low and high platinum surface area electrodes in terms of the mechanism of the oxygen reduction reaction. ftn{dollar}spcircler{dollar}Nafion is a registered trademark of E. I. du Pont de Nemours, Inc.
机译:固体聚合物电解质燃料电池的研究获得了动力,因为获得了对于运输和太空应用必不可少的高能量效率和功率密度的前景。用于这些燃料电池的最先进的固体聚合物电解质是全氟磺酸离聚物(PFSI),例如杜邦的Nafion和Dow PFSI。 Nafion和陶氏PFSI所具有的高氧溶解度,化学稳定性,质子传导性和渗透选择性使其成为燃料电池电解质的理想选择。此外,氟化酸在电极上的最小阴离子吸附可增强氧还原动力学。这项工作的主要目的是确定Nafion中氧气的浓度和扩散系数,以及在完全固态条件下(即无接触液体电解质)在Pt / Nafion界面处还原氧气的电极动力学参数。在Pt / Nafion界面进行了循环伏安和恒电位瞬变测量。缓慢扫描伏安图产生了用于氧气还原的Tafel参数。从两部分的塔菲尔曲线可以看出,计算出的交换电流密度高于在任何其他铂/酸界面处获得的交换电流密度。通过对瞬态的分析,确定了Nafion中的氧溶解度和扩散系数。然后,使用电化学阻抗谱(EIS)研究来研究在较低加湿条件下的氧气减少量。 EIS显然可以区分电极动力学,O {sb2 {dollar}的质量传输和膜的电学特性。在30℃至80℃范围内的温度依赖性研究在Pt / Nafion界面产生了用于氧还原的活化能。氧在Nafion中的扩散系数随温度增加而溶解度下降。氧还原动力学的压力依赖性表明氧的反应顺序是统一的。此外,表明氧溶解遵循亨利等温线,而氧的扩散系数随压力不变。在多孔气体扩散电极上还研究了温度和压力对氧还原动力学的影响。将氧还原的活化能和氧的反应顺序与微电极研究进行了比较。就氧气还原反应的机理而言,低铂表面积电极和高铂表面积电极之间实际上没有区别。 ftn {dollar} spcircler {dollar} Nafion是E. I. du Pont de Nemours,Inc.的注册商标。

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