Yu Liwei, Takagi Yasumasa, Nakamura Takahiro, Sekizawa Oki, Sakata Tomohiro, Uruga Tomoya, Tada Mizuki, Iwasawa Yasuhiro, Samjeské Gabor, Yokoyama Toshihiko
Department of Materials Molecular Science, Institute for Molecular Science, Okazaki, Aichi 444-8585, Japan.
Phys Chem Chem Phys. 2017 Nov 22;19(45):30798-30803. doi: 10.1039/c7cp05436j.
Photoelectron spectroscopy has the advantage of providing electric potentials by non-contact measurements based on the kinetic energy shift in component potential. We performed operando hard X-ray photoelectron spectroscopy (HAXPES) measurements with an 8 keV excitation source to measure the shift in electron kinetic energies as a function of the voltages of all the components at the anode and cathode electrodes of a polymer electrolyte fuel cell (PEFC). At the cathode electrode, when we increase the voltage between the cathode and anode from 0.2 to 1.2 V, the O 1s and F 1s peaks shift to a lower binding energy and the magnitude of the energy shift is equal to the voltage. The Pt 3d and C 1s peaks do not shift with the voltage since platinum nanoparticles and carbon supports at the cathode electrode have ground contact. In contrast to the cathode electrode, the peak shifts of all the components at the anode electrode show the same amount of shift as the voltages. It is clear that the change in the potential difference occurs only in an electrical double layer at the interface between the cathode electrode (Pt/C) and the electrolyte (Nafion and water), and that the anode electrode is in equilibrium as a pseudo-hydrogen electrode. Moreover, the electric potential variation of the cathode electrode in a PEFC under a power generation condition was also directly detected by operando HAXPES.
光电子能谱具有通过基于组分电位中动能偏移的非接触测量来提供电势的优势。我们使用8 keV激发源进行了原位硬X射线光电子能谱(HAXPES)测量,以测量聚合物电解质燃料电池(PEFC)阳极和阴极电极上所有组分的电子动能随电压的变化。在阴极电极处,当我们将阴极和阳极之间的电压从0.2 V增加到1.2 V时,O 1s和F 1s峰向较低结合能移动,并且能量偏移的幅度等于电压。由于阴极电极处的铂纳米颗粒和碳载体接地,Pt 3d和C 1s峰不随电压移动。与阴极电极相反,阳极电极上所有组分的峰移动显示出与电压相同的移动量。很明显,电位差的变化仅发生在阴极电极(Pt/C)与电解质(Nafion和水)之间界面处的双电层中,并且阳极电极作为伪氢电极处于平衡状态。此外,还通过原位HAXPES直接检测了发电条件下PEFC中阴极电极的电势变化。