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金属中心上双氧结合的见解:多参考电子结构分析。

Insights into dioxygen binding on metal centers: an multireference electronic structure analysis.

作者信息

Zhang Peng, Lee Way-Zen, Ye Shengfa

机构信息

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Phys Chem Chem Phys. 2024 Oct 2;26(38):25057-25068. doi: 10.1039/d4cp02915a.

DOI:10.1039/d4cp02915a
PMID:39301704
Abstract

Why does binding of dioxygen (O) to metal centers, the initial step of O storage, transportation, and activation, almost inevitably induce metal-to-O single-electron transfer and generate superoxo (O˙) species, instead of genuine O02 adducts? To address this question, this study describes highly correlated wavefunction-based calculations using CASSCF/NEVPT2 (CASSCF = complete active space self-consistent field, and NEVPT2 = -electron valence state second-order perturbation theory) approaches to explore the electronic-structure evolution of O association on Fe(II)(BDPP) (HBDPP = 2,6-bis((2-()-diphenylhydroxylmethyl-1-pyrrolidinyl)methyl)pyridine) and Co(II)(BDPP) to produce = 3 Fe(III)(BDPP)(O˙) (1) and Co(III)(BDPP)(O˙) (2). CASSCF/NEVPT2 calculations suggest that the processes furnishing 1 and 2 feature an avoided crossing resulting from interactions of two diabatic curves, of which one is characterized as Co(II) and Fe(II) centers interacting with a triplet O ligand and the other as Co(III) and Fe(III) centers bound to a superoxo ligand. In both cases, the avoided crossing induces a one-electron transfer from the divalent metal center to the incoming O ligand and leads to formation of trivalent metal-O˙ complexes. To facilitate the interpretation of complicated multireference wavefunctions, we formulated two-fragment spin eigenfunctions utilizing Clebsch-Gordan coefficients (CGCs) to rationalize computed spin populations on the metal centers and the O ligand and compared these results with usual valence bonding (VB) analyses. It turns out that both methods give the same results and are complementary to each other. Finally, the limitation of DFT approaches in describing complex electronic structures involving metal-ligand magnetic couplings is delineated.

摘要

为什么双原子氧(O₂)与金属中心的结合,即氧储存、运输和活化的第一步,几乎不可避免地会引发从金属到氧的单电子转移并生成超氧(O₂˙)物种,而不是真正的O₂加合物呢?为了解决这个问题,本研究描述了基于高度相关波函数的计算,使用CASSCF/NEVPT2(CASSCF = 完全活性空间自洽场,NEVPT2 = n电子价态二阶微扰理论)方法来探索氧与Fe(II)(BDPP)(HBDPP = 2,6 - 双((2 - () - 二苯基羟甲基 - 1 - 吡咯烷基)甲基)吡啶)和Co(II)(BDPP)结合时的电子结构演化,以生成S = 3的Fe(III)(BDPP)(O₂˙)(1)和Co(III)(BDPP)(O₂˙)(2)。CASSCF/NEVPT2计算表明,生成1和2的过程具有由两条非绝热曲线相互作用导致的避免交叉,其中一条曲线的特征是Co(II)和Fe(II)中心与三重态O₂配体相互作用,另一条曲线的特征是Co(III)和Fe(III)中心与超氧配体结合。在这两种情况下,避免交叉都会引发从二价金属中心到进入的O₂配体的单电子转移,并导致三价金属 - O₂˙配合物的形成。为了便于解释复杂的多参考波函数,我们利用克莱布施 - 戈尔丹系数(CGC)构建了双片段自旋本征函数,以合理化计算得到的金属中心和O₂配体上的自旋布居,并将这些结果与常规价键(VB)分析进行比较。结果表明,这两种方法给出了相同的结果,并且相互补充。最后,阐述了密度泛函理论(DFT)方法在描述涉及金属 - 配体磁耦合的复杂电子结构方面的局限性。

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