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负载碳的 Pt^Ag 纳米结构作为氧还原反应的阴极催化剂。

Carbon-supported Pt^Ag nanostructures as cathode catalysts for oxygen reduction reaction.

机构信息

Innovative Catalysis Program, Key Lab of Organic Optoelectronics & Molecular Engineering, Department of Chemistry, Tsinghua University, Beijing, 100084, China.

出版信息

Phys Chem Chem Phys. 2011 Mar 7;13(9):3863-72. doi: 10.1039/c0cp01612h. Epub 2011 Jan 5.

Abstract

Pt(m)^Ag nanostructures (m being the atomic Pt/Ag ratio, m = 0.1-0.6) were prepared by reflux citrate reduction of PtCl(6)(2-) ions in aqueous solution containing colloidal Ag (6.3 ± 3.9 nm). A distinct alloying of Pt with Ag was detected due to an involvement of the galvanic replacement reaction between PtCl(6)(2-) and metallic Ag colloids. The nanostructure transformed from a structure with an Ag-core and an alloyed PtAg-shell to a hollow PtAg alloy structure with the increase in m. Compared to a commercial E-TEK Pt/C catalyst, the catalytic performance of Pt in the Pt(m)^Ag/C samples for the cathode oxygen reduction reaction (ORR) strongly correlated with the electronic structure of Pt, as a consequence of varied Pt dispersion and Pt-Ag interaction. With either H(2)SO(4) or KOH as an electrolyte, Pt in the Pt(m)^Ag nanostructures with a relatively high m (≥0.4) showed significantly enhanced intrinsic activity whereas Pt in those catalysts with low m (≤0.2) appeared less active than the Pt/C catalyst. These data are used to discuss the role of electronic structure and geometric effects of Pt toward ORR.

摘要

Pt(m)^Ag 纳米结构(m 是原子 Pt/Ag 比,m=0.1-0.6)是通过在含有胶体 Ag(6.3±3.9nm)的水溶液中回流柠檬酸盐还原 PtCl(6)(2-)离子制备的。由于 PtCl(6)(2-)和金属 Ag 胶体之间的电置换反应的参与,检测到 Pt 与 Ag 的明显合金化。随着 m 的增加,纳米结构从具有 Ag 核和合金化 PtAg 壳的结构转变为空心 PtAg 合金结构。与商业 E-TEK Pt/C 催化剂相比,Pt(m)^Ag/C 样品中 Pt 对阴极氧还原反应(ORR)的催化性能与 Pt 的电子结构密切相关,这是由于 Pt 分散度和 Pt-Ag 相互作用的变化。在 H(2)SO(4)或 KOH 作为电解质的情况下,具有相对较高 m(≥0.4)的 Pt(m)^Ag 纳米结构中的 Pt 显示出显著增强的本征活性,而在 m 较低(≤0.2)的这些催化剂中的 Pt 比 Pt/C 催化剂活性低。这些数据用于讨论 Pt 对 ORR 的电子结构和几何效应的作用。

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