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电子和几何效应赋予锯齿状铂铑纳米线优异的乙醇氧化催化性能。

Electronic and Geometric Effects Endow PtRh Jagged Nanowires with Superior Ethanol Oxidation Catalysis.

作者信息

Yu Renqin, Shao Ruiwen, Ning Fanghua, Yu Yaodong, Zhang Jing, Ma Xian-Yin, Zhu Rongying, Li Menggang, Lai Jianping, Zhao Yufeng, Zeng Lingyou, Zhang Jiujun, Xia Zhonghong

机构信息

Institute for Sustainable Energy, College of Sciences, Shanghai University, Shanghai, 200444, China.

Beijing Advanced Innovation Center for Intelligent Robots and Systems and Institute of Engineering Medicine, Beijing Institute of Technology, Beijing, 100081, China.

出版信息

Small. 2024 Feb;20(7):e2305817. doi: 10.1002/smll.202305817. Epub 2023 Oct 9.

Abstract

Complete ethanol oxidation reaction (EOR) in C1 pathway with 12 transferred electrons is highly desirable yet challenging in direct ethanol fuel cells. Herein, PtRh jagged nanowires synthesized via a simple wet-chemical approach exhibit exceptional EOR mass activity of 1.63 A mgPt and specific activity of 4.07 mA cm , 3.62-fold and 4.28-folds increments relative to Pt/C, respectively. High proportions of 69.33% and 73.42% of initial activity are also retained after chronoamperometric test (80 000 s) and 1500 consecutive potential cycles, respectively. More importantly, it is found that PtRh jagged nanowires possess superb anti-CO poisoning capability. Combining X-ray absorption spectroscopy, X-ray photoelectron spectroscopy as well as density functional theory calculations unveil that the remarkable catalytic activity and CO tolerance stem from both the Rh-induced electronic effect and geometric effect (manifested by shortened Pt─Pt bond length and shrinkage of lattice constants), which facilitates EOR catalysis in C1 pathway and improves reaction kinetics by reducing energy barriers of rate-determining steps (such as *CO → *COOH). The C1 pathway efficiency of PtRh jagged nanowires is further verified by the high intensity of CO relative to CH COOH/CH CHO in infrared reflection absorption spectroscopy.

摘要

在直接乙醇燃料电池中,通过C1途径实现12个电子转移的完全乙醇氧化反应(EOR)极具吸引力,但也颇具挑战性。在此,通过简单的湿化学方法合成的PtRh锯齿状纳米线展现出卓越的EOR质量活性,为1.63 A mgPt,比活性为4.07 mA cm ,相对于Pt/C分别提高了3.62倍和4.28倍。在计时电流测试(80000 s)和1500次连续电位循环后,初始活性也分别保留了69.33%和73.42%的高比例。更重要的是,发现PtRh锯齿状纳米线具有出色的抗CO中毒能力。结合X射线吸收光谱、X射线光电子能谱以及密度泛函理论计算表明,显著的催化活性和CO耐受性源于Rh诱导的电子效应和几何效应(表现为Pt─Pt键长缩短和晶格常数收缩),这促进了C1途径中的EOR催化,并通过降低速率决定步骤(如*CO→*COOH)的能垒来改善反应动力学。红外反射吸收光谱中相对于CH₃COOH/CH₃CHO的高CO强度进一步验证了PtRh锯齿状纳米线的C1途径效率。

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