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Durability of Pt/graphitized carbon catalysts for the oxygen reduction reaction prepared by the nanocapsule method

机译:纳米胶囊法制备的Pt /石墨化碳催化剂在氧还原反应中的耐久性

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Monodisperse Pt nanoparticles supported on a graphitized carbon black (GC; 150 m~2 g~(-1)), which exhibits higher resistance to carbon corrosion than a conventional high-surface-area carbon black (CB; 800 m~2 g~(-1)), were prepared by the nanocapsule method. Three kinds of 50 wt%-Pt loaded catalysts (our nanocapsule Pt/GC, a commercial Pt/GC, and a commercial Pt/CB) were subjected to the durability test by a standard potential step protocol (E = 0.9 V <-> 1.3 V vs. RHE, holding 30 s at each E, 1 min for one cycle) in N2-saturated 0.1 M HClO4 solution at 25 °C. The oxygen reduction reaction (ORR) activities at these catalysts were evaluated from the hydrodynamic voltammograms in O2-saturated 0.1 M HClO4 solution at 25 °C by the rotating ring-disk electrode technique. The kinetically-controlled mass activities (MA) for the ORR at these catalysts at E = 0.85 to 0.70 V vs. RHE were found to decrease in proportion to log [number of potential step cycles] from 100 to 5000 cycles. It was found that our nanpcapsule Pt/GC showed the highest durability; the time elapsed for the reduction of MA_(0.8v) to 700 A g~(-1) (ca. 1/2 of the initial MA_(0.8v)) at our Pt/GC was 30 and 60 times longer than those for the commercial Pt/GC and Pt/CB, respectively. It was found that the most important factor leading to both high MA and high durability is highly dispersed state of Pt nanoparticles with uniform size over the whole surface of the corrosion-resistant GC support, to which our nanocapsule method has contributed greatly.
机译:负载在石墨化炭黑(GC; 150 m〜2 g〜(-1))上的单分散Pt纳米颗粒,与常规的高表面积炭黑(CB; 800 m〜2 g〜 (-1)),通过纳米胶囊法制备。通过标准电位步骤规程(E = 0.9 V-)对三种负载50%重量的Pt的催化剂(我们的纳米胶囊Pt / GC,商业Pt / GC和商业Pt / CB)进行了耐久性测试。 1.3 V vs. RHE,在25°C的N2饱和的0.1 M HClO4溶液中,每个E保持30 s,一个周期1分钟)。通过旋转环盘电极技术,在25°C下O2饱和的0.1 M HClO4溶液中的流体动力学伏安图,评估了这些催化剂的氧还原反应(ORR)活性。发现在E = 0.85至0.70 V vs. RHE时,这些催化剂上ORR的动力学控制质量活度(MA)与log [潜在的步骤循环数]从100到5000循环成比例下降。结果发现,我们的纳米胶囊Pt / GC具有最高的耐用性。在我们的Pt / GC上将MA_(0.8v)还原到700 A g〜(-1)(大约是初始MA_(0.8v)的1/2)所花费的时间分别是30倍和60倍。商业Pt / GC和Pt / CB。发现导致高MA和高耐久性的最重要因素是在耐腐蚀GC载体的整个表面上具有均匀尺寸的Pt纳米颗粒的高度分散状态,这是我们的纳米胶囊方法做出的巨大贡献。

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