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Effects of sputtering parameters on the performance of electrodes fabricated for proton exchange membrane fuel cells

机译:溅射参数对质子交换膜燃料电池电极性能的影响

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摘要

One way to alleviate the emission of air pollutants and CO2 due to burning fossil fuels is the use of fuel cells. Sputter deposition techniques are good candidates for the fabrication of electrodes used for proton exchange membrane fuel cells (PEMFCs). Input power and sputtering-gas pressure are two important parameters in a sputtering process. However, little is known about the effects of these sputtering parameters on the performance of PEMFC electrodes. Therefore, this study applied a radio frequency (RF) magnetron sputter deposition process to prepare PEMFC electrodes and investigated the effects of RF power and sputtering-gas pressure in electrode fabrication on electrode/cell performance. At a Pt loading of 0.1 mg cm~(-2), the electrode fabricated at 100 W, 10~(-3) Torr was found to exhibit the best performance mainly due to its lowest kinetic (activation) resistance (dominating the cell performance) in comparison to those fabricated by 50 and 150 W at 10~(-3) Torr, as well as by 10~(-4) and 10~(-2) Torr at 100 W. In the tested ranges, the control of sputtering-gas pressure seems to be more critical than that of RF power for the activation loss. In addition to electrochemically active surface area, electrode microstructure should also be responsible for electrode/cell polarization, particularly the activation polarization.
机译:减轻因燃烧化石燃料而导致的空气污染物和CO2排放的一种方法是使用燃料电池。溅射沉积技术是制造用于质子交换膜燃料电池(PEMFC)的电极的良好选择。输入功率和溅射气压是溅射过程中的两个重要参数。然而,关于这些溅射参数对PEMFC电极性能的影响知之甚少。因此,本研究采用射频(RF)磁控溅射沉积工艺制备PEMFC电极,并研究了射频功率和溅射气压在电极制造中对电极/电池性能的影响。在0.1 mg cm〜(-2)的Pt负载下,发现在100 W,10〜(-3)Torr下制造的电极表现出最佳性能,这主要是由于其最低的动力学(激活)电阻(主导了电池性能) )与在10〜(-3)Torr时由50和150 W以及在100 W时由10〜(-4)和10〜(-2)在Torr下制造的产品相比。在测试范围内,对于激活损耗,溅射气压似乎比RF功率更为关键。除电化学活性表面积外,电极微结构还应负责电极/电池极化,尤其是活化极化。

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