Jing Run, Lu Xuebin, Wang Jingfei, Xiong Jian, Qiao Yina, Zhang Rui, Yu Zhihao
School of Environmental Science and Engineering, Tianjin University, Tianjin, 300350, P.R. China.
School of Ecology and Environment, Tibet University, Lhasa, 850000, P.R. China.
Small. 2024 Jun;20(26):e2310926. doi: 10.1002/smll.202310926. Epub 2024 Jan 18.
Activation of small molecules is considered to be a central concern in the theoretical investigation of environment- and energy-related catalytic conversions. Sub-nanostructured frustrated Lewis pairs (FLPs) have been an emerging research hotspot in recent years due to their advantages in small molecule activation. Although the progress of catalytic applications of FLPs is increasingly reported, the fundamental theories related to the structural formation, site regulation, and catalytic mechanism of FLPs have not yet been fully developed. Given this, it is attempted to demonstrate the underlying theory of FLPs formation, corresponding regulation methods, and its activation mechanism on small molecules using CeO as the representative metal oxide. Specifically, this paper presents three fundamental principles for constructing FLPs on CeO surfaces, and feasible engineering methods for the regulation of FLPs sites are presented. Furthermore, cases where typical small molecules (e.g., hydrogen, carbon dioxide, methane oxygen, etc.) are activated over FLPs are analyzed. Meanwhile, corresponding future challenges for the development of FLPs-centered theory are presented. The insights presented in this paper may contribute to the theories of FLPs, which can potentially provide inspiration for the development of broader environment- and energy-related catalysis involving small molecule activation.
小分子的活化被认为是环境与能源相关催化转化理论研究的核心关注点。亚纳米结构的受阻路易斯酸碱对(FLPs)近年来因其在小分子活化方面的优势而成为一个新兴的研究热点。尽管关于FLPs催化应用的进展报道越来越多,但与FLPs的结构形成、位点调控及催化机理相关的基础理论尚未得到充分发展。鉴于此,本文尝试以CeO作为代表性金属氧化物,阐述FLPs形成的基础理论、相应的调控方法及其对小分子的活化机理。具体而言,本文提出了在CeO表面构建FLPs的三条基本原理,并给出了调控FLPs位点的可行工程方法。此外,还分析了典型小分子(如氢气、二氧化碳、甲烷、氧气等)在FLPs上被活化的实例。同时,提出了以FLPs为中心的理论发展面临的相应未来挑战。本文所阐述的见解可能有助于丰富FLPs的理论,有望为涉及小分子活化的更广泛的环境与能源相关催化领域的发展提供灵感。