原子分散的钨通过调节铂的5d轨道电子来增强电催化氢氧化中CO的耐受性

Xu Zhang , Peng Yu , Di Shen , Bin Cai , Tianyu Han , Ying Xie , Lei Wang
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引用次数: 0

摘要

在阳极氢氧化反应(HOR)中,Pt催化剂表面对一氧化碳(CO)中毒的敏感性一直是制约质子交换膜燃料电池(pemfc)发展的关键因素。有效调节Pt的电子结构以提高其抗CO能力是开发具有强大抗中毒能力的高性能催化剂的关键。本文研究了以Pt纳米粒子和n掺杂碳纳米纤维上原子分散的钨(W)位点为特征的Pt/W@NCNF作为耐CO的HOR催化剂。W的存在使电子从Pt转移,从而促进了Pt-5d轨道上的电子重排。它不仅优化了H∗和CO∗在Pt上的吸附,而且吸附在W位点上的OH∗中间体氧化了吸附在Pt上的CO∗,从而保留了更多的H2吸附和氧化活性位点。Pt/W@NCNF的HOR交换电流密度达到了商用Pt/C的1.35倍,在H2中引入1000 ppm CO后,极限电流密度仅下降了3.4%。值得注意的是,Pt/W@NCNF-based pemfc在各种CO浓度范围内都具有显著的优异性能。目前的研究表明,Pt的电子调制是同时实现对CO的抗性和促进HOR活性的有效策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Atomically dispersed tungsten enhances CO tolerance in electrocatalytic hydrogen oxidation by regulating the 5d-orbital electrons of platinum

Atomically dispersed tungsten enhances CO tolerance in electrocatalytic hydrogen oxidation by regulating the 5d-orbital electrons of platinum
The susceptibility of Pt catalyst surfaces to carbon monoxide (CO) poisoning in anodic hydrogen oxidation reaction (HOR) has been a critical constraint on the development of proton exchange membrane fuel cells (PEMFCs). Effectively regulating the electronic structure of Pt to enhance CO resistance is crucial for developing high-performance catalysts with robust anti-poisoning capabilities. Herein, the Pt/W@NCNF featured by Pt nanoparticles and atomical dispersed tungsten (W) sites on N-doped carbon nanofibers is developed for CO tolerance HOR catalyst. The presence of W enables the electron transfer from Pt, which promotes electron rearrangement in the Pt-5d orbitals. It not only optimizes the adsorption of H∗ and CO∗ on Pt, but also the OH∗ intermediates adsorbed on the W sites oxidize the CO∗ adsorbed on Pt, thereby retaining more active sites for H2 adsorption and oxidation. The HOR exchange current density of Pt/W@NCNF reaches 1.35 times that of commercial Pt/C, and the limiting current density decreases by only 3.4% after introducing 1000 ​ppm CO in H2. Notably, the Pt/W@NCNF-based PEMFCs deliver markedly superior performance across a range of CO concentrations. The present study demonstrates that electronic modulation of Pt is an effective strategy for simultaneously achieving resistance to CO and promoted HOR activity.
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