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替代行为中的捕获:共吸附物对原子精确的Fe/Co/Se纳米团簇的影响

Caught in the Act of Substitution: Interadsorbate Effects on an Atomically Precise Fe/Co/Se Nanocluster.

作者信息

Kephart Jonathan A, Zhou Daniel Y, Sandwisch Jason, Cajiao Nathalia, Krajewski Sebastian M, Malinowski Paul, Chu Jiun-Haw, Neidig Michael L, Kaminsky Werner, Velian Alexandra

机构信息

Department of Chemistry, University of Washington, Seattle, Washington 98195, United States.

Department of Chemistry, University of Rochester, Rochester, New York 14627, United States.

出版信息

ACS Cent Sci. 2024 May 31;10(6):1276-1282. doi: 10.1021/acscentsci.4c00210. eCollection 2024 Jun 26.

Abstract

Directing groups guide substitution patterns in organic synthetic schemes, but little is known about pathways to control reactivity patterns, such as regioselectivity, in complex inorganic systems such as bioinorganic cofactors or extended surfaces. Interadsorbate effects are known to encode surface reactivity patterns in inorganic materials, modulating the location and binding strength of ligands. However, owing to limited experimental resolution into complex inorganic structures, there is little opportunity to resolve these effects on the atomic scale. Here, we utilize an atomically precise Fe/Co/Se nanocluster platform, [Fe(L)CoSeL'] ([(L)]; L = CN Bu, THF; L' = PhPNTol), in which allosteric interadsorbate effects give rise to pronounced site-differentiation. Using a combination of spectroscopic techniques and single-crystal X-ray diffractometry, we discover that coordination of THF at the ligand-free Fe site in [(CN Bu)] sets off a domino effect wherein allosteric through-cluster interactions promote the regioselective dissociation of CN Bu at a neighboring Fe site. Computational analysis reveals that this active site correlation is a result of delocalized Fe···Se···Co···Se covalent interactions that intertwine edge sites on the same cluster face. This study provides an unprecedented atom-scale glimpse into how interfacial metal-support interactions mediate a collective and regiospecific path for substrate exchange across multiple active sites.

摘要

导向基团在有机合成方案中引导取代模式,但对于在生物无机辅因子或扩展表面等复杂无机体系中控制反应模式(如区域选择性)的途径却知之甚少。已知吸附质间相互作用可编码无机材料中的表面反应模式,调节配体的位置和结合强度。然而,由于对复杂无机结构的实验分辨率有限,几乎没有机会在原子尺度上解析这些效应。在此,我们利用一个原子精确的Fe/Co/Se纳米团簇平台[Fe(L)CoSeL']([(L)];L = CNBu,THF;L' = PhPNTol),其中变构吸附质间相互作用会产生明显的位点分化。通过结合光谱技术和单晶X射线衍射法,我们发现[(CNBu)]中无配体的Fe位点处THF的配位引发了多米诺效应,即变构跨簇相互作用促进了相邻Fe位点处CNBu的区域选择性解离。计算分析表明,这种活性位点相关性是由在同一簇面上相互交织边缘位点的离域Fe···Se···Co···Se共价相互作用导致的。这项研究以前所未有的原子尺度视角揭示了界面金属-载体相互作用如何介导底物在多个活性位点间进行交换的集体且区域特异性途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8a9/11212139/254dcca99def/oc4c00210_0001.jpg

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