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Pt 在 AuCu 金属间化合物基底上的皮:最大化燃料电池中 Pt 利用率的策略。

Pt skin on AuCu intermetallic substrate: a strategy to maximize Pt utilization for fuel cells.

机构信息

College of Chemistry and Molecular Sciences, Hubei Key Lab of Electrochemical Power Sources, Wuhan University , Wuhan 430072, P.R. China.

出版信息

J Am Chem Soc. 2014 Jul 9;136(27):9643-9. doi: 10.1021/ja503315s. Epub 2014 Jun 25.

Abstract

The dependence on Pt catalysts has been a major issue of proton-exchange membrane (PEM) fuel cells. Strategies to maximize the Pt utilization in catalysts include two main approaches: to put Pt atoms only at the catalyst surface and to further enhance the surface-specific catalytic activity (SA) of Pt. Thus far there has been no practical design that combines these two features into one single catalyst. Here we report a combined computational and experimental study on the design and implementation of Pt-skin catalysts with significantly improved SA toward the oxygen reduction reaction (ORR). Through screening, using density functional theory (DFT) calculations, a Pt-skin structure on AuCu(111) substrate, consisting of 1.5 monolayers of Pt, is found to have an appropriately weakened oxygen affinity, in comparison to that on Pt(111), which would be ideal for ORR catalysis. Such a structure is then realized by substituting the Cu atoms in three surface layers of AuCu intermetallic nanoparticles (AuCu iNPs) with Pt. The resulting Pt-skinned catalyst (denoted as Pt(S)AuCu iNPs) has been characterized in depth using synchrotron XRD, XPS, HRTEM, and HAADF-STEM/EDX, such that the Pt-skin structure is unambiguously identified. The thickness of the Pt skin was determined to be less than two atomic layers. Finally the catalytic activity of Pt(S)AuCu iNPs toward the ORR was measured via rotating disk electrode (RDE) voltammetry through which it was established that the SA was more than 2 times that of a commercial Pt/C catalyst. Taking into account the ultralow Pt loading in Pt(S)AuCu iNPs, the mass-specific catalytic activity (MA) was determined to be 0.56 A/mg(Pt)@0.9 V, a value that is well beyond the DOE 2017 target for ORR catalysts (0.44 A/mg(Pt)@0.9 V). These findings provide a strategic design and a realizable approach to high-performance and Pt-efficient catalysts for fuel cells.

摘要

对质子交换膜(PEM)燃料电池而言,对 Pt 催化剂的依赖一直是个主要问题。最大限度地提高催化剂中 Pt 利用率的策略包括两种主要方法:将 Pt 原子仅置于催化剂表面,并进一步提高 Pt 的表面特定催化活性(SA)。到目前为止,还没有一种实用的设计将这两个特点结合到一个单一的催化剂中。在此,我们报告了一项关于 Pt 皮催化剂设计和实施的计算与实验研究,该催化剂在氧还原反应(ORR)中具有显著提高的 SA。通过使用密度泛函理论(DFT)计算进行筛选,在 AuCu(111) 衬底上发现了一种 Pt 皮结构,该结构由 1.5 单层 Pt 组成,与 Pt(111)相比,其氧亲和力被适当削弱,这对于 ORR 催化是理想的。然后,通过用 Pt 取代 AuCu 金属间纳米粒子(AuCu iNPs)三个表面层中的 Cu 原子来实现这种结构。所得的 Pt 皮催化剂(表示为 Pt(S)AuCu iNPs)已通过同步辐射 XRD、XPS、HRTEM 和 HAADF-STEM/EDX 进行了深入表征,从而明确地识别出 Pt 皮结构。Pt 皮的厚度被确定为小于两个原子层。最后,通过旋转圆盘电极(RDE)伏安法测量了 Pt(S)AuCu iNPs 对 ORR 的催化活性,由此确定其 SA 超过商用 Pt/C 催化剂的 2 倍以上。考虑到 Pt(S)AuCu iNPs 中极低的 Pt 负载量,确定其质量比催化活性(MA)为 0.56 A/mg(Pt)@0.9 V,该值远远超过 DOE 2017 年 ORR 催化剂的目标(0.44 A/mg(Pt)@0.9 V)。这些发现为高性能和高效 Pt 燃料电池催化剂提供了一种战略性的设计和可实现的方法。

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