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首页> 外文期刊>ACS applied materials & interfaces >Polyelectrolyte-Induced Stereoassembly of Grain Boundary-Enriched Platinum Nanoworms on Ti3C2Tx MXene Nanosheets for Efficient Methanol Oxidation
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Polyelectrolyte-Induced Stereoassembly of Grain Boundary-Enriched Platinum Nanoworms on Ti3C2Tx MXene Nanosheets for Efficient Methanol Oxidation

机译:Ti3C2TX MXEN纳米型晶粒富铂纳米线的聚电解质诱导的立体载体进行高效甲醇氧化

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摘要

Direct methanol fuel cells with high energy conversion efficiency and low hazard emissions have aroused great attention from both academic and industrial communities, but their large-scale commercial application has been blocked by high costs as well as short lifespan of the anode Pt catalysts. Here, we demonstrate a simple and scalable noncovalent strategy for the synthesis of quasi-one-dimensional (1D) Pt nanoworms grown on poly(diallyldimethyl-ammonium chloride) (PDDA)-functionalized Ti3C2Tx nanosheets as anode catalysts for methanol electrooxidation. Interestingly, the introduction of PDDA on Ti3C2Tx nanosheets can not only effectively adjust their surface charge property to strengthen the electrostatic interaction between metal and support but also induce the stereoassembly of worm-shaped Pt nanocrystals with abundant catalytically active grain boundaries, which enable the resulting hybrid to express high electrocatalytic activity, remarkable durability, and strong antipoisoning ability for methanol electrooxidation, which are better than those of the traditional Pt nanoparticle electrocatalysts loaded on carbon black, carbon nanotubes, reduced graphene oxide, and MXene matrixes. Theoretical simulations disclose that the more stable worm-shaped Pt configuration with an optimized electronic structure on the Ti3C2Tx surface possesses a weaker CO adsorption ability than that of the Pt nanoclusters, thereby providing a dramatically enhanced and sustainable electrocatalytic performance.
机译:具有高能量转换效率和低危险排放的直接甲醇燃料电池引起了学术和工业社区的极大关注,但其大规模的商业应用已经被高成本和阳极PT催化剂的寿命短。在此,我们证明了一种简单且可扩展的非共价策略,用于合成在聚(二烯丙基 - 氯化铵)(PDDA) - 官能化Ti3C2Tx纳米片中生长的准二维(1D)Pt纳米云纳米粉末作为甲醇电氧化的阳极催化剂。有趣的是,在Ti3C2TX纳米片上引入PDDA不能有效地调节它们的表面电荷特性,以加强金属和支撑之间的静电相互作用,而且还诱导具有丰富的催化活性晶界的蠕虫形Pt纳米晶体的立体装配,这使得所得的杂种为了表达高电催化活性,显着的耐久性,以及甲醇电氧化的强耐磷酸盐能力,这比装载在炭黑,碳纳米管,还原氧化物和mxene基质上的传统Pt纳米粒子电催化剂更好。理论仿真公开了在Ti3C2TX表面上具有优化电子结构的蠕虫形PT构型更稳定的蜗杆结构具有比Pt纳米能器的较弱的Co吸附能力,从而提供显着增强和可持续的电催化性能。

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