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首页> 外文期刊>Electrochimica Acta >A facile approach for preparation of highly dispersed platinum-copper/carbon nanocatalyst toward formic acid electro-oxidation
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A facile approach for preparation of highly dispersed platinum-copper/carbon nanocatalyst toward formic acid electro-oxidation

机译:一种易于制备的高度分散的铂-铜/碳纳米催化剂,用于甲酸电氧化的简便方法

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Gaining control over the size and dispersion of binary metal nanoparticles is critical in order to manipulate their catalytic properties. In this study, we demonstrate a facile and effective solid phase evolution approach to prepare a highly dispersed PtCu/C catalyst via a surface substitution and etching separation process with the Pt-decorated Cu particles on carbon as the precursors. It is demonstrated that the dispersion of metal nanoparticles in PtCu/C derived from the present solid phase evolution is better than that in PtCu/C (C) prepared from the co-reduction by NaBH4. As a result, the synthesized PtCu/C shows a larger electrochemically active surface area (ECSA) (48.6 m(2) g (1)), higher mass (0.52 mA mu g (1)) and area activities (1.07 mA cm (2)) than that of the PtCu/C (C) (37.9 m(2) g (1), 0.34 mA mu g (1) and 0.89 mA cm (2), respectively). As compared to commercial Pt/C catalyst, PtCu/C exhibits ca. 2.5 times higher formic acid oxidation (FAO) activities (0.52 mA mu g (1) and 1.07 mA cm (2)). The tolerance toward CO poisoning is characterized by CO stripping, the result indicates that both onset (0.43 V) and peak (0.50 V) potentials of PtCu/C for CO oxidation show a negative shift of ca. 70 mV. More significantly, PtCu/C shows high stability in the acid solution, which can maintain 90.1% retention in ECSA after 1000 CV cycles. In addition, the solid separation method offers ease of manipulation, allowing the synthesis of a novel class of highly dispersed binary metal nanoparticles. (C) 2016 Elsevier Ltd. All rights reserved.
机译:为了控制其催化性能,对二元金属纳米颗粒的大小和分散进行控制是至关重要的。在这项研究中,我们演示了一种简便有效的固相演化方法,该方法可通过表面置换和蚀刻分离工艺(以碳上的Pt装饰的Cu颗粒为前体)来制备高度分散的PtCu / C催化剂。结果表明,金属纳米颗粒在本固相演化过程中在PtCu / C中的分散性优于在NaBH4的共还原作用下制备的PtCu / C(C)中的分散性。结果,合成的PtCu / C显示出更大的电化学活性表面积(ECSA)(48.6 m(2)g(1)),更高的质量(0.52 mAμg(1))和面积活性(1.07 mA cm( 2))的PtCu / C(C)(分别为37.9 m(2)g(1),0.34 mA mu g(1)和0.89 mA cm(2))。与市售Pt / C催化剂相比,PtCu / C的催化性能约为甲酸氧化(FAO)活性高2.5倍(0.52 mAμg(1)和1.07 mA cm(2))。对CO中毒的耐受性以CO汽提为特征,结果表明PtCu / C的CO氧化的起始电位(0.43 V)和峰值电位(0.50 V)均显示ca的负移。 70毫伏。更重要的是,PtCu / C在酸性溶液中显示出高稳定性,在1000个CV循环后,可以在ECSA中保持90.1%的保留率。此外,固体分离方法易于操作,可以合成一类新型的高度分散的二元金属纳米颗粒。 (C)2016 Elsevier Ltd.保留所有权利。

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