Max Planck Institute of Colloids and Interfaces, Research Campus Golm, D-14424, Potsdam, Germany.
University of Potsdam, D-14424, Potsdam, Germany.
Adv Mater. 2019 Mar;31(13):e1805719. doi: 10.1002/adma.201805719. Epub 2018 Dec 18.
Carbon nanomaterials doped with some other lightweight elements were recently described as powerful, heterogeneous, metal-free organocatalysts, adding to their high performance in electrocatalysis. Here, recent observations in traditional catalysis are reviewed, and the underlying reaction mechanisms of the catalyzed organic transformations are explored. In some cases, these are due to specific active functional sites, but more generally the catalytic activity relates to collective properties of the conjugated nanocarbon frameworks and the electron transfer from and to the catalytic centers and substrates. It is shown that the learnings are tightly related to those of electrocatalysis; i.e., the search for better electrocatalysts also improves chemocatalysis, and vice versa. Carbon-carbon heterojunction effects and some perspectives on future possibilities are discussed at the end.
最近有研究描述,掺杂了一些其他轻元素的碳纳米材料是一种高效、多相、无金属的有机催化剂,在电催化方面也有出色的性能。本文综述了传统催化领域的最新进展,并探讨了这些催化有机转化的反应机制。在某些情况下,这是由于特定的活性功能位点,但更普遍的是,催化活性与共轭纳米碳框架的集体性质以及催化中心和底物之间的电子转移有关。结果表明,这些发现与电催化密切相关;也就是说,寻找更好的电催化剂也能改善化学催化,反之亦然。文末还讨论了碳-碳杂化效应和未来的一些可能性。