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定向内部静电场:配位化学和催化领域中一种新兴的设计元素。

Oriented internal electrostatic fields: an emerging design element in coordination chemistry and catalysis.

作者信息

Weberg Alexander B, Murphy Ryan P, Tomson Neil C

机构信息

R, oy and Diana Vagelos Laboratories, Department of Chemistry, University of Pennsylvania 231 S. 34th Street Philadelphia Pennsylvania 19104 USA

出版信息

Chem Sci. 2022 Apr 20;13(19):5432-5446. doi: 10.1039/d2sc01715f. eCollection 2022 May 18.

Abstract

The power of oriented electrostatic fields (ESFs) to influence chemical bonding and reactivity is a phenomenon of rapidly growing interest. The presence of strong ESFs has recently been implicated as one of the most significant contributors to the activity of select enzymes, wherein alignment of a substrate's changing dipole moment with a strong, local electrostatic field has been shown to be responsible for the majority of the enzymatic rate enhancement. Outside of enzymology, researchers have studied the impacts of "internal" electrostatic fields the addition of ionic salts to reactions and the incorporation of charged functional groups into organic molecules (both experimentally and computationally), and "externally" the implementation of bulk fields between electrode plates. Incorporation of charged moieties into homogeneous inorganic complexes to generate internal ESFs represents an area of high potential for novel catalyst design. This field has only begun to materialize within the past 10 years but could be an area of significant impact moving forward, since it provides a means for tuning the properties of molecular complexes a method that is orthogonal to traditional strategies, thereby providing possibilities for improved catalytic conditions and novel reactivity. In this perspective, we highlight recent developments in this area and offer insights, obtained from our own research, on the challenges and future directions of this emerging field of research.

摘要

定向静电场(ESF)影响化学键合和反应活性的能力是一个正迅速引起人们兴趣的现象。最近,强ESF的存在被认为是某些酶活性的最重要贡献因素之一,其中已表明底物变化的偶极矩与强局部静电场的对齐是酶促反应速率提高的主要原因。在酶学领域之外,研究人员已经研究了“内部”静电场(通过向反应中添加离子盐以及将带电官能团引入有机分子(包括实验和计算方面))以及“外部”静电场(通过在电极板之间施加体电场)的影响。将带电部分引入均相无机配合物以产生内部ESF是新型催化剂设计的一个极具潜力的领域。这个领域在过去10年才刚刚开始形成,但可能是一个未来会产生重大影响的领域,因为它提供了一种调节分子配合物性质的方法——一种与传统策略正交的方法,从而为改善催化条件和新型反应活性提供了可能性。在这篇综述中,我们突出了该领域的最新进展,并根据我们自己的研究提供了有关这个新兴研究领域的挑战和未来方向的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1328/9116365/d4b47de42ac5/d2sc01715f-f1.jpg

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