Guan Jingyu, Yang Shaoxuan, Liu Tongtong, Yu Yihuan, Niu Jin, Zhang Zhengping, Wang Feng
State Key Laboratory of Chemical Resource Engineering, Beijing Key Laboratory of Electrochemical Process and Technology for Materials, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Angew Chem Int Ed Engl. 2021 Sep 27;60(40):21899-21904. doi: 10.1002/anie.202107437. Epub 2021 Aug 31.
The development of active and stable platinum (Pt)-based oxygen reduction reaction (ORR) electrocatalysts with good resistance to poisoning is a prerequisite for widespread practical application of fuel cells. An effective strategy for enhancing the electrocatalytic performance is to tune or control the physicochemical state of the Pt surface. Herein, we show a general surface-engineering approach to prepare a range of nanostructured Pt alloys by coating with alloy PtBi shells. FePt@PtBi core-shell nanoparticles showed the best ORR performance with a mass activity of 0.96 A mg and a specific activity of 2.06 mA cm , respectively 7 times and 11 times those of the corresponding values for benchmark Pt/C. Moreover, FePt@PtBi shows much better tolerance to methanol and carbon monoxide than conventional Pt-based electrocatalysts. The observed comprehensive enhancement in ORR performance of FePt@PtBi can be attributed to the increased compressive strain of the Pt surface due to in-plane shearing resulting from the presence of the large Bi atoms in the surface-structured PtBi overlayers, as well as charge displacement via Pt-Bi bonding which mitigates crossover issues.
开发具有良好抗中毒性能的活性和稳定的铂(Pt)基氧还原反应(ORR)电催化剂是燃料电池广泛实际应用的前提条件。增强电催化性能的一种有效策略是调节或控制Pt表面的物理化学状态。在此,我们展示了一种通用的表面工程方法,通过包覆合金PtBi壳层来制备一系列纳米结构的Pt合金。FePt@PtBi核壳纳米颗粒表现出最佳的ORR性能,质量活性为0.96 A mg,比活性为2.06 mA cm,分别是基准Pt/C相应值的7倍和11倍。此外,FePt@PtBi对甲醇和一氧化碳的耐受性比传统的Pt基电催化剂好得多。观察到的FePt@PtBi在ORR性能方面的全面增强可归因于表面结构化PtBi覆盖层中存在大的Bi原子导致的面内剪切使Pt表面的压缩应变增加,以及通过Pt-Bi键合的电荷位移减轻了交叉问题。