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以鱼鳞为载体材料合成的氮掺杂分级层状多孔碳作为铂纳米颗粒电催化剂用于氧还原反应。

Nitrogen-doped hierarchical lamellar porous carbon synthesized from the fish scale as support material for platinum nanoparticle electrocatalyst toward the oxygen reduction reaction.

作者信息

Liu Haijing, Cao Yinliang, Wang Feng, Huang Yaqin

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing Key Laboratory of Electrochemical Process and Technology for Materials, Beijing University of Chemical Technology , Beijing 100029, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2014 Jan 22;6(2):819-25. doi: 10.1021/am403432h. Epub 2014 Jan 6.

Abstract

Novel hierarchical lamellar porous carbon (HLPC) with high BET specific surface area of 2730 m(2) g(-1) and doped by nitrogen atoms has been synthesized from the fish scale without any post-synthesis treatment, and applied to support the platinum (Pt) nanoparticle (NP) catalysts (Pt/HLPC). The Pt NPs could be highly dispersed on the porous surface of HLPC with a narrow size distribution centered at ca. 2.0 nm. The results of the electrochemical analysis reveal that the electrochemical active surface area (ECSA) of Pt/HLPC is larger than the Pt NP electrocatalyst supported on the carbon black (Pt/Vulcan XC-72). Compared with the Pt/Vulcan XC-72, the Pt/HLPC exhibits larger current density, lower overpotential, and enhanced catalytic activity toward the oxygen reduction reaction (ORR) through the direct four-electron pathway. The improved catalytic activity is mainly attributed to the high BET specific surface area, hierarchical porous structures and the nitrogen-doped surface property of HLPC, indicating the superiority of HLPC as a promising support material for the ORR electrocatalysts.

摘要

已从鱼鳞中合成出具有2730 m² g⁻¹ 高BET比表面积且氮原子掺杂的新型分级层状多孔碳(HLPC),无需任何合成后处理,并将其应用于负载铂(Pt)纳米颗粒(NP)催化剂(Pt/HLPC)。Pt NPs能够高度分散在HLPC的多孔表面上,尺寸分布狭窄,中心约为2.0 nm。电化学分析结果表明,Pt/HLPC的电化学活性表面积(ECSA)大于负载在炭黑上的Pt NP电催化剂(Pt/Vulcan XC-72)。与Pt/Vulcan XC-72相比,Pt/HLPC表现出更大的电流密度、更低的过电位,并通过直接四电子途径增强了对氧还原反应(ORR)的催化活性。催化活性的提高主要归因于HLPC的高BET比表面积、分级多孔结构和氮掺杂表面性质,表明HLPC作为ORR电催化剂有前景的载体材料的优越性。

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