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一种在室温下稳定的高自旋铁(IV)-氧络合物的生成与反应活性

Generation and Reactivity of a High-Spin Iron(IV)-Oxo Complex That Is Stable at Ambient Temperatures.

作者信息

Hastings Christopher D, Huffman Lucy S X, Brennessel William W, Barnett Brandon R

机构信息

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

出版信息

J Am Chem Soc. 2025 Apr 30;147(17):14031-14035. doi: 10.1021/jacs.5c00503. Epub 2025 Apr 16.

Abstract

Nature operates a variety of challenging oxidation reactions through intermediates bearing tetravalent iron centers bound to a terminal oxo ligand. The high-spin ( = 2) electronic configuration is believed to be particularly important in C-H activation reactions mediated by iron(IV)-oxo species. Coordination environments that promote high-spin ground states obviate the need for spin-state crossing to access this state and can promote rapid oxidation reactivity. As a result, however, synthetic iron(IV)-oxo species with = 2 ground states tend to exhibit poor thermal stabilities, which has hampered a broader elucidation of their reactivity profiles. In this work, we report the synthesis of a remarkably stable high-spin iron(IV)-oxo complex that localizes the Fe═O unit within a rigid organic macrocycle. This design results in essentially unlimited stability at ambient temperatures and a half-life of 21 h at 70 °C in CHCN, endowing this compound with the highest thermal stability for a high-spin Fe═O complex reported to date. The ligand's steric profile shuts down intermolecular reactivity with potential O atom acceptors and hydrocarbons bearing weak C-H bonds, but proton-coupled electron transfer reactivity with 2,4,6-tri--butylphenol (TTBP) occurs readily at room temperature despite its steric bulk.

摘要

自然界通过与末端氧配体结合的四价铁中心中间体进行各种具有挑战性的氧化反应。高自旋(S = 2)电子构型被认为在铁(IV)-氧物种介导的C-H活化反应中尤为重要。促进高自旋基态的配位环境消除了通过自旋态交叉来达到该状态的必要性,并可促进快速氧化反应性。然而,结果是,具有S = 2基态的合成铁(IV)-氧物种往往表现出较差的热稳定性,这阻碍了对其反应性概况的更广泛阐明。在这项工作中,我们报告了一种非常稳定的高自旋铁(IV)-氧配合物的合成,该配合物将Fe═O单元定位在刚性有机大环内。这种设计在环境温度下产生了基本上无限的稳定性,并且在70°C的CHCN中半衰期为21小时,赋予该化合物迄今为止报道的高自旋Fe═O配合物中最高的热稳定性。配体的空间结构阻止了与潜在的O原子受体和带有弱C-H键的烃的分子间反应性,但是尽管其空间体积较大,但在室温下与2,4,6-三叔丁基苯酚(TTBP)的质子耦合电子转移反应很容易发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af31/12046554/c815ed2ed46e/ja5c00503_0001.jpg

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