首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Structural Control and Catalytic Reactivity of Peptide-Templated Pd and Pt Nanomaterials for Olefin Hydrogenation
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Structural Control and Catalytic Reactivity of Peptide-Templated Pd and Pt Nanomaterials for Olefin Hydrogenation

机译:肽模板化的Pd和Pt纳米材料用于烯烃加氢的结构控制和催化反应性

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摘要

Diverse classes of metallic nanostructures have been explored recently for a variety of applications, including energy efficient catalytic transformations. The morphology, size, and local chemical environment of the catalytic nanomaterials can have dramatic effects on their reactivity. Herein, we demonstrate a peptide-template-based approach for the synthesis of Pd and Pt nanostructures of varying morphologies under ambient conditions. In this report, we examine the effect of the metal/peptide ratio over an expansive range to demonstrate the stepwise production of materials ranging from nanospheres to nanoparticle networks for the Pd structures. Interestingly, when the metallic composition was changed to Pt, only spherical materials were generated, indicating that the metallic composition of the nanostructures plays a key role in the final morphology. The hydrogenation of allyl alcohol was then employed as a model reaction to examine the catalytic reactivity of these metallic nanomaterials. Under environmentally benign reaction conditions, high turnover frequency values were observed for the metallic Pd and Pt nanocatalysts that was independent of the material morphology. Given their high degree of reactivity and facile synthetic preparation, these materials could prove to be versatile and efficient catalysts for a variety of industrially and environmentally important reactions.
机译:最近已经针对各种应用探索了各种类型的金属纳米结构,包括节能的催化转化。催化纳米材料的形态,大小和局部化学环境可能对其反应性产生巨大影响。在这里,我们展示了一种基于肽模板的方法,用于在环境条件下合成各种形态的Pd和Pt纳米结构。在本报告中,我们研究了金属/肽比例在广阔范围内的影响,以证明逐步生产的材料从Pd结构的纳米球到纳米粒子网络不等。有趣的是,当金属成分变为Pt时,仅生成球形材料,这表明纳米结构的金属成分在最终形态中起关键作用。然后将烯丙醇的氢化用作模型反应以检查这些金属纳米材料的催化反应性。在对环境无害的反应条件下,金属Pd和Pt纳米催化剂的高转换频率值与材料的形态无关。鉴于它们的高反应性和便捷的合成制备方法,这些材料可被证明是用于多种工业和环境重要反应的通用和高效催化剂。

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