具有富电子Ptδ−壳层的中空AgPt@Pt核壳共催化剂,用于提高光催化H2O2生成的选择性

IF 10.8 2区 化学 Q1 CHEMISTRY, PHYSICAL
Yu Wang , Haiyang Shi , Zihan Chen , Feng Chen , Ping Wang , Xuefei Wang
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引用次数: 0

摘要

铂(Pt)是一种优良的氧还原助催化剂,在光催化生产H2O2方面具有很大的潜力。然而,它的催化效率受到O2的强吸附的限制,这有利于O-O键的裂解,降低了2电子氧还原反应(ORR)的选择性。幸运的是,通过调整助催化剂的结构来修饰Pt的电子结构,可以减弱Pt - o键的强度。本文通过两步光沉积的方法,在BiVO4的(010)面上先后修饰了Pt和Ag助催化剂。由于在此过程中发生了位移反应,最终合成了一种具有中空AgPt合金芯和富电子Ptδ−壳层(AgPt@Pt)结构的协同催化剂。光催化实验表明,空心AgPt@Pt改性BiVO4的H2O2产率达到1021.5 μmol L−1。其AQE为5.1%,是Pt/BiVO4光催化剂的28.6倍,仅为35.7 μmol L−1。此外,研究结果表明,AgPt可以将电子转移到Pt壳层,生成富电子的Ptδ−活性位点,从而增加AgPt@Pt催化剂中Pt负载的反键轨道占用率。这种电子重分配削弱了O2在Pt上的吸附强度,促进了2电子ORR,有利于H2O2的高效生成。这种合成策略为制备其他pt基纳米合金助催化剂提供了一种通用的方法,这些催化剂具有更好的选择性将O2还原为H2O2的活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hollow AgPt@Pt core-shell cocatalyst with electron-rich Ptδ− shell for boosting selectivity of photocatalytic H2O2 production for faceted BiVO4

Hollow AgPt@Pt core-shell cocatalyst with electron-rich Ptδ− shell for boosting selectivity of photocatalytic H2O2 production for faceted BiVO4
Platinum (Pt) is an excellent oxygen reduction cocatalyst with great potential for the photocatalytic production of H2O2. However, its catalytic efficiency is limited by the strong adsorption of O2, which facilitates O–O bond cleavage and reduces selectivity for the 2-electron oxygen reduction reaction (ORR). Fortunately, the strength of the Pt–O bond can be weakened by adjusting the structure of the cocatalyst to modify the electronic structure of Pt. In this paper, Pt and Ag cocatalysts are successively modified on the (010) facet of BiVO4 through a two-step photodeposition method. Due to the occurrence of a displacement reaction during the process, a synergistic catalyst with a hollow AgPt alloy core and an electron-rich Ptδ shell (AgPt@Pt) structure is ultimately synthesized. Photocatalytic experiments demonstrated that the H2O2 production from BiVO4 modified with hollow AgPt@Pt reached an impressive 1021.5 ​μmol ​L−1. This corresponds to an AQE of 5.1%, which is 28.6 times higher than that of the Pt/BiVO4 photocatalyst with only 35.7 ​μmol ​L−1. Furthermore, research results show that AgPt can transfer electrons to the Pt shell to generate electron-rich Ptδ active sites, thus increasing the antibonding orbital occupancy of Pt–Oads in AgPt@Pt catalysts. This electron redistribution weakens the adsorption strength of O2 on Pt, promoting the 2-electron ORR and facilitating the efficient generation of H2O2. This synthesis strategy offers a versatile approach for preparing other Pt-based nano-alloy cocatalysts with improved activity for the selective reduction of O2 to H2O2.
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来源期刊
物理化学学报
物理化学学报 化学-物理化学
CiteScore
16.60
自引率
5.50%
发文量
9754
审稿时长
1.2 months
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