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Evolution in the chemical making of gold oxidation catalysts

机译:金氧化催化剂化学制备的演变

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Despite the inertia of bulk gold and of extended gold surfaces towards oxygen, gold-oxide nanocomposites were found, at the end of the 20th Century, to display exceptional low temperature catalytic activity in oxidation reactions, based on a concerted mechanism involving support-mediated oxygen activation. Since then, both experimental and theoretical studies have converged in showing that further decreasing the size of gold nano particles (Au NPs) would lead to non-assisted gold catalysis. This opens up new perspectives in the choice of the gold dispersant and in the development of more efficient, sustainable, viable gold catalysis. However, given the low melting point of gold, stabilizing such small Au NPs remains challenging. This article reviews the way in which gold catalyst preparation, i.e., synthetic strategies to tackle and address the size challenge in bottom-up chemical methods, has evolved as the understanding of the mechanism of the gold catalyzed oxidation of CO has progressed. (C) 2015 Academie des sciences. Published by Elsevier Masson SAS. This is an open access article under the CC BY-NC-ND license.
机译:尽管散装金和向氧气延伸的金表面具有惯性,但基于涉及载体介导的氧气的协同机制,在20世纪末发现了氧化金纳米复合材料,在氧化反应中显示出出色的低温催化活性。激活。从那时起,无论是实验研究还是理论研究都趋于融合,表明进一步减小金纳米颗粒(Au NPs)的尺寸将导致非辅助金催化。这为金分散剂的选择和更有效,可持续,可行的金催化的发展开辟了新的前景。然而,鉴于金的低熔点,稳定如此小的Au NP仍然具有挑战性。本文回顾了随着对金催化CO氧化机理的理解的发展,金催化剂的制备方法(即解决和应对自下而上的化学方法面临的尺寸挑战的合成策略)的发展方式。 (C)2015年科学研究院。由Elsevier Masson SAS发布。这是CC BY-NC-ND许可下的开放获取文章。

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