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Exploring the first steps in core–shell electrocatalyst preparation: in situ characterization of the underpotential deposition of Cu on supported Au nanoparticles

机译:探索核壳电催化剂制备的第一步:原位表征Cu在负载金纳米粒子上的欠电位沉积

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摘要

The underpotential deposition (upd) of a Cu shell on a non-Pt nanoparticle core followed by galvanic displacement of the Cu template shell to form core-shell electrocatalyst materials is one means by which the Pt-based mass activity targets required for commercialization of PEM fuel cells may be reached. In situ EXAFS measurements were conducted at both the Au L(3) and the Cu K absorption edges during deposition of Cu onto a carbon-supported Au electrocatalyst to study the initial stages of formation of such a core shell electrocatalyst. The Au L(3) EXAFS data obtained in 0.5 mol dm(-3) H(2)SO(4) show that the shape of the Au core is potential dependent, from a flattened to a round spherical shape as the Cu upd potential is approached. Following the addition of 2 mmol dm(-3) Cu, the structure was also measured as a function of the applied potential. At +0.2 V vs Hg/Hg(2)SO(4), the Cu(2+) species was found to be a hydrated octahedron. As the potential was made more negative, single-crystal studies predict an ordered bilayer of sulfate anions and partially discharged Cu ions, followed by a complete/uniform layer of Cu atoms. In contrast, the model obtained by fitting the Au L(3) and Cu K EXAFS data corresponds first to partially discharged Cu ions deposited at the defect sites in the outer shell of the Au nanoparticles at -0.42 V, followed by the growth of dusters of Cu atoms at -0.51 V. The absence of a uniform/complete Cu shell, even at the most negative potentials investigated, has implications for the structure, and the activity and/or stability, of the core-shell catalyst that would be subsequently formed following galvanic displacement of the Cu shell.
机译:Cu壳在非Pt纳米颗粒核上的欠电势沉积(upd),然后电迁移Cu模板壳以形成核-壳电催化剂材料,是PEM商业化所需的基于Pt的质量活性目标的一种手段可能会到达燃料电池。在将Cu沉积到碳载Au电催化剂上的过程中,在Au L(3)和Cu K吸收边缘均进行了原位EXAFS测量,以研究这种核壳电催化剂形成的初始阶段。在0.5 mol dm(-3)H(2)SO(4)中获得的Au L(3)EXAFS数据表明,随着Cu上升电位,Au核的形状与电势有关,从平坦到球形接近。添加2 mmol dm(-3)Cu后,还根据所施加的电势来测量结构。在+0.2 V对Hg / Hg(2)SO(4),Cu(2+)物种被发现是水合八面体。随着电势变得更负,单晶研究预测硫酸盐阴离子和部分释放的Cu离子有序双层,随后是完整/均匀的Cu原子层。相反,通过拟合Au L(3)和Cu K EXAFS数据获得的模型首先对应于部分放电的Cu离子,其沉积在-0.42 V的Au纳米颗粒的外壳中的缺陷部位,然后是喷粉器的生长。 -0.51 V处的铜原子数。缺乏均匀/完整的铜壳,即使在所研究的最大负电势下,也对核壳催化剂的结构,活性和/或稳定性有影响,随后将在铜壳的电位移之后形成。

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