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TiSnO-C复合材料负载铂的还原处理:一种调节锡-铂相互作用的途径。

Reductive Treatment of Pt Supported on TiSnO-C Composite: A Route for Modulating the Sn-Pt Interactions.

作者信息

Silva Cristina, Salmanzade Khirdakhanim, Borbáth Irina, Dódony Erzsébet, Olasz Dániel, Sáfrán György, Kuncser Andrei, Pászti-Gere Erzsébet, Tompos András, Pászti Zoltán

机构信息

Institute of Materials and Environmental Chemistry, Research Centre for Natural Sciences, Magyar Tudósok Körútja 2, H-1117 Budapest, Hungary.

Department of Physical Chemistry and Materials Science, Faculty of Chemical Technology and Biotechnology, Budapest University of Technology and Economics, Műegyetem rkp. 3., H-1111 Budapest, Hungary.

出版信息

Nanomaterials (Basel). 2023 Aug 3;13(15):2245. doi: 10.3390/nano13152245.

Abstract

The composites of transition metal-doped titania and carbon have emerged as promising supports for Pt electrocatalysts in PEM fuel cells. In these multifunctional supports, the oxide component stabilizes the Pt particles, while the dopant provides a co-catalytic function. Among other elements, Sn is a valuable additive. Stong metal-support interaction (SMSI), i.e., the migration of a partially reduced oxide species from the support to the surface of Pt during reductive treatment is a general feature of TiO-supported Pt catalysts. In order to explore the influence of SMSI on the stability and performance of Pt/TiSnO-C catalysts, the structural and catalytic properties of the as prepared samples measured using XRD, TEM, XPS and electrochemical investigations were compared to those obtained from catalysts reduced in hydrogen at elevated temperatures. According to the observations, the uniform oxide coverage of the carbon backbone facilitated the formation of Pt-oxide-C triple junctions at a high density. The electrocatalytic behavior of the as prepared catalysts was determined by the atomic closeness of Sn to Pt, while even a low temperature reductive treatment resulted in Sn-Pt alloying. The segregation of tin oxide on the surface of the alloy particles, a characteristic material transport process in Sn-Pt alloys after oxygen exposure, contributed to a better stability of the reduced catalysts.

摘要

过渡金属掺杂二氧化钛与碳的复合材料已成为质子交换膜燃料电池中铂电催化剂的有前景的载体。在这些多功能载体中,氧化物成分稳定铂颗粒,而掺杂剂提供助催化功能。在其他元素中,锡是一种有价值的添加剂。强金属-载体相互作用(SMSI),即在还原处理过程中部分还原的氧化物物种从载体迁移到铂表面,是二氧化钛负载铂催化剂的一个普遍特征。为了探究SMSI对Pt/TiSnO-C催化剂稳定性和性能的影响,将使用XRD、TEM、XPS和电化学研究方法测量的所制备样品的结构和催化性能与在高温下于氢气中还原的催化剂所获得的性能进行了比较。根据观察结果,碳骨架上均匀的氧化物覆盖促进了高密度的铂-氧化物-碳三结的形成。所制备催化剂的电催化行为由锡与铂的原子间距决定,而即使低温还原处理也会导致锡-铂合金化。合金颗粒表面氧化锡的偏析是氧气暴露后锡-铂合金中一种典型的物质传输过程,有助于提高还原催化剂的稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d7e/10473237/078fd5ecd422/nanomaterials-13-02245-sch001.jpg

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