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原位蚀刻辅助合成具有高指数晶面的Pt-Fe-Mn三元合金作为电氧化反应的高效催化剂。

The in situ etching assisted synthesis of Pt-Fe-Mn ternary alloys with high-index facets as efficient catalysts for electro-oxidation reactions.

作者信息

Qin Congli, Fan Aixin, Zhang Xin, Dai Xiaoping, Sun Hui, Ren Danhua, Dong Zhun, Wang Yao, Luan Chenglong, Ye Jin-Yu, Sun Shi-Gang

机构信息

State Key Laboratory of Heavy Oil Processing, College of Chemical Engineering, China University of Petroleum, Beijing 102249, China.

出版信息

Nanoscale. 2019 May 9;11(18):9061-9075. doi: 10.1039/c8nr10231g.

Abstract

Pt-Based alloys enclosed with high-index facets (HIFs) generally show much higher specific catalytic activities than their counterparts with low-index facets in electro-catalytic reactions. However, the exposure of a certain Pt surface would require a well-defined nanostructure, which usually can only be obtained at larger sizes. Therefore, a low dispersion of Pt atoms in Pt-based alloys with HIFs would affect the atomic utilization of Pt, resulting in most of these Pt-based alloys exhibiting lower mass activity than commercial Pt/C and Pt black catalysts for electro-catalytic reactions. Herein, we address a novel strategy to divide the surface areas of larger sized nanocrystals into small surface area nanocrystals by in situ etching Pt-Fe-Mn concave cubes (CNCs) while maintaining the morphology of the Pt-Fe-Mn alloys to improve the utilization of Pt atoms and thus increase the mass activity. Remarkably, the Pt-Fe-Mn unique concave cube (UCNC) nanocrystals (NCs) showed much higher specific and mass activities toward the methanol oxidation reaction (MOR) than the Pt-Fe-Mn CNCs, commercial Pt black and Pt/C. The kinetic analysis from Tafel plots indicated that UCNC Pt-Fe-Mn NCs had the lowest Tafel slope at whole potentials and the splitting of the first C-H bond of a CH3OH molecule with the first electron transfer was the rate-determining step at high potentials (above 0.45 V). In situ Fourier transform infrared reflection (FTIR) spectroscopic investigation at the molecular level indicated that methanol chemical absorption took place at a low potential of -0.2 V at the UCNC NC electrode. Meanwhile, much higher CO2 productivity was observed at the UCNC NC electrode, indicating the strong anti-poisoning ability of the UCNC Pt-Fe-Mn NCs during methanol electrooxidation. Furthermore, in the formic acid oxidation (FAOR) test, the activity and long-term durability of the Pt-Fe-Mn UCNC NCs were also found to be superior to those of the Pt-Fe-Mn CNCs, commercial Pt black and Pt/C. The enhanced catalytic performance in both the MOR and FAOR is most probably due to the unique HIF structure consisting of small sized particles, enhanced Pt utilization, the richness of crystalline defects and synergetic effects of Pt, Fe, and Mn metals. Our present work provides an insight into the rational design of Pt based alloys with HIFs to improve the catalytic performance of electro-catalytic reactions for fundamental study.

摘要

在电催化反应中,具有高指数晶面(HIFs)的铂基合金通常比具有低指数晶面的同类合金表现出更高的比催化活性。然而,特定铂表面的暴露需要明确的纳米结构,而这种结构通常只能在较大尺寸下获得。因此,在具有HIFs的铂基合金中,铂原子的低分散性会影响铂的原子利用率,导致这些铂基合金中的大多数在电催化反应中的质量活性低于商业铂/碳和铂黑催化剂。在此,我们提出了一种新颖的策略,通过原位蚀刻铂 - 铁 - 锰凹立方体(CNCs),将较大尺寸纳米晶体的表面积划分为小表面积纳米晶体,同时保持铂 - 铁 - 锰合金的形态,以提高铂原子的利用率,从而增加质量活性。值得注意的是,铂 - 铁 - 锰独特凹立方体(UCNC)纳米晶体(NCs)在甲醇氧化反应(MOR)中表现出比铂 - 铁 - 锰CNCs、商业铂黑和铂/碳更高的比活性和质量活性。塔菲尔曲线的动力学分析表明,UCNC铂 - 铁 - 锰NCs在整个电位下具有最低的塔菲尔斜率,并且在高电位(高于0.45 V)下,CH3OH分子的第一个C - H键与第一个电子转移的断裂是速率决定步骤。在分子水平上的原位傅里叶变换红外反射(FTIR)光谱研究表明,在UCNC NC电极上,甲醇在 - 0.2 V的低电位下发生化学吸附。同时,在UCNC NC电极上观察到更高的CO2生成率,表明UCNC铂 - 铁 - 锰NCs在甲醇电氧化过程中具有很强的抗中毒能力。此外,在甲酸氧化(FAOR)测试中,还发现铂 - 铁 - 锰UCNC NCs的活性和长期耐久性优于铂 - 铁 - 锰CNCs、商业铂黑和铂/碳。MOR和FAOR中催化性能的增强很可能归因于由小尺寸颗粒组成的独特HIF结构、铂利用率的提高、晶体缺陷的丰富性以及铂、铁和锰金属之间的协同效应。我们目前的工作为合理设计具有HIFs的铂基合金以提高电催化反应的催化性能提供了深入见解,用于基础研究。

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