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The effect of carbon supports on the performance of platinum/carbon nanotubes for proton exchange membrane fuel cells

机译:碳载体对质子交换膜燃料电池铂/碳纳米管性能的影响

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In this study, platinum/carbon nanotubes (Pt/CNTs) are prepared using a wet-chemical process (colloidal method), which are served as the electrocatalysts for proton exchange membrane fuel cells. Three CNTs are used as Pt supports: citric acid-oxidized CNTs (cCNT), citric acid-oxidized nitrogen-doped CNTs (cCN), and monoethanolamine-treated CNTs (nCNT), where the CNTs are commercial products and the nitrogen-doped CNTs are prepared using chemical vapor deposition. The Pt/CNTs are characterized using high-resolution transmission electron microscopy, thermogravimetric analysis, X-ray diffraction, X-ray photoelectron spectroscopy, and cyclic voltammetry. A catalyst-coated membrane is used to prepare the membrane electrode assembly for the polarization test. The results show that the Pt nanopartides are uniformly dispersed on the surface of CNTs using the colloidal method and the mean size of the Pt on Pt/cCNT, Pt/cCN and PtCNT is 3.98 ± 1.23,2.91 ± 1.18 and 4.40 ± 1.57 nm, respectively. The temperatures for the maximum rate of weight loss are 506 (Pt/cCNT), 515 (Pt/cCN) and 508 (PtCNT) ℃ The electrochemical surface areas for Pt/cCNT, Pt/cCN and PtCNT are calculated to be 59.5,40.4 and 48.4 m~2/g. respectively. The results for a single fuel cell test show that the current density at 0.6 V, using Pt/C (Johnson Matthey) as anode catalyst and Pt/cCNT, Pt/cCN or PtCNT as a cathode catalyst, is 658, 441, or 684 mA/cm~2, and the peak power density is 661,441, or 575 mW/cm~2. The results show that Pt/CNTs prepared by colloidal method exhibit excellent cell performance.
机译:在这项研究中,铂/碳纳米管(Pt / CNT)是通过湿化学工艺(胶体法)制备的,用作质子交换膜燃料电池的电催化剂。三种CNT被用作Pt载体:柠檬酸氧化的CNT(cCNT),柠檬酸氧化的氮掺杂的CNT(cCN)和单乙醇胺处理的CNT(nCNT),其中CNT是商业产品,而氮掺杂的CNT使用化学气相沉积制备。使用高分辨率透射电子显微镜,热重分析,X射线衍射,X射线光电子能谱和循环伏安法对Pt / CNT进行表征。使用涂覆有催化剂的膜来制备用于极化测试的膜电极组件。结果表明,采用胶体法将Pt纳米粒子均匀分散在CNT的表面上,Pt / cCNT,Pt / cCN和Pt / nCNT上Pt的平均尺寸为3.98±1.23、2.91±1.18和4.40±1.57纳米。最大失重速率的温度为506(Pt / cCNT),515(Pt / cCN)和508(Pt / nCNT)℃。计算出Pt / cCNT,Pt / cCN和Pt / nCNT的电化学表面积为分别为59.5,40.4和48.4 m〜2 / g。分别。单个燃料电池测试的结果表明,使用Pt / C(Johnson Matthey)作为阳极催化剂,以Pt / cCNT,Pt / cCN或Pt / nCNT作为阴极催化剂,在0.6 V时的电流密度为658、441,或684 mA / cm〜2,峰值功率密度为661,441或575 mW / cm〜2。结果表明,通过胶体法制备的Pt / CNT具有优异的电池性能。

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