Wang Wei, Anderson Caleb F, Wang Zongyuan, Wu Wei, Cui Honggang, Liu Chang-Jun
Tianjin Co-Innovation Center of Chemical Science & Engineering , School of Chemical Engineering and Technology , Tianjin University , Tianjin 300072 , China . Email:
International Joint Research Centre for Catalytic Technology , Key Laboratory of Chemical Engineering Process & Technology for High-Efficiency Conversion , School of Chemistry and Material Science , Heilongjiang University , Harbin 150080 , China.
Chem Sci. 2017 May 1;8(5):3310-3324. doi: 10.1039/c7sc00069c. Epub 2017 Feb 14.
Noble metal catalysts have been widely used in many applications because of their high activity and selectivity. However, a controllable preparation of noble metal catalysts still remains as a significant challenge. To overcome this challenge, peptide templates can play a critical role in the controllable syntheses of catalysts owing to their flexible binding with specific metallic surfaces and self-assembly characteristics. By employing peptide templates, the size, shape, facet, structure, and composition of obtained catalysts can all be specifically controlled under the mild synthesis conditions. In addition, catalysts with spherical, nanofiber, and nanofilm structures can all be produced by associating with the self-assembly characteristics of peptide templates. Furthermore, the peptide-templated noble metal catalysts also reveal significantly enhanced catalytic behaviours compared with conventional catalysts because the electron conductivity, metal dispersion, and reactive site exposure can all be improved. In this review, we summarize the research progresses in the syntheses of peptide-templated noble metal catalysts. The applications of the peptide-templated catalysts in organic reactions, photocatalysis, and electrocatalysis are discussed, and the relationship between structure and activity of these catalysts are addressed. Future opportunities, including new catalytic materials designed by using biological principles, are indicated to achieve selective, eco-friendly, and energy neutral synthesis approaches.
贵金属催化剂因其高活性和选择性而在许多应用中得到广泛使用。然而,可控地制备贵金属催化剂仍然是一项重大挑战。为了克服这一挑战,肽模板由于其与特定金属表面的灵活结合和自组装特性,在催化剂的可控合成中可以发挥关键作用。通过使用肽模板,在温和的合成条件下,所得催化剂的尺寸、形状、晶面、结构和组成均可得到特定控制。此外,通过与肽模板的自组装特性相结合,可以制备出具有球形、纳米纤维和纳米膜结构的催化剂。此外,与传统催化剂相比,肽模板化贵金属催化剂还表现出显著增强的催化性能,因为其电子传导性、金属分散性和活性位点暴露程度均可得到改善。在本综述中,我们总结了肽模板化贵金属催化剂合成方面的研究进展。讨论了肽模板化催化剂在有机反应、光催化和电催化中的应用,并阐述了这些催化剂的结构与活性之间的关系。还指出了未来的机遇,包括利用生物学原理设计新型催化材料,以实现选择性、环保和能量中性的合成方法。