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本文引用的文献

1
Cholesky Decomposition-Based Multiconfiguration Second-Order Perturbation Theory (CD-CASPT2): Application to the Spin-State Energetics of Co(III)(diiminato)(NPh).基于 Cholesky 分解的多组态二级微扰理论(CD-CASPT2):在 Co(III)(二亚胺)(NPh)自旋态能学中的应用。
J Chem Theory Comput. 2008 May;4(5):694-702. doi: 10.1021/ct700263h.
2
Copper-hydroperoxo-mediated N-debenzylation chemistry mimicking aspects of copper monooxygenases.铜-氢过氧介导的N-脱苄基化学模拟单加氧铜酶的某些方面。
Inorg Chem. 2008 Oct 6;47(19):8736-47. doi: 10.1021/ic800617m. Epub 2008 Sep 11.
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Accurate ab initio density fitting for multiconfigurational self-consistent field methods.用于多组态自洽场方法的精确从头算密度拟合
J Chem Phys. 2008 Jul 14;129(2):024113. doi: 10.1063/1.2953696.
4
The restricted active space followed by second-order perturbation theory method: theory and application to the study of CuO2 and Cu2O2 systems.受限活性空间二阶微扰理论方法:理论及其在CuO2和Cu2O2体系研究中的应用
J Chem Phys. 2008 May 28;128(20):204109. doi: 10.1063/1.2920188.
5
Stereoelectronic effects on molecular geometries and state-energy splittings of ligated monocopper dioxygen complexes.立体电子效应对联接的单铜双氧络合物的分子几何结构和态-能分裂的影响。
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Copper(I)-alpha-ketocarboxylate complexes: characterization and O2 reactions that yield copper-oxygen intermediates capable of hydroxylating arenes.铜(I)-α-酮羧酸盐配合物:表征及产生能够使芳烃羟基化的铜-氧中间体的氧气反应。
J Am Chem Soc. 2007 Nov 21;129(46):14190-2. doi: 10.1021/ja0760426. Epub 2007 Oct 25.
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CopperII-mediated aromatic ortho-hydroxylation: a hybrid DFT and AB initio exploration.铜(II)介导的芳环邻位羟基化:密度泛函理论(DFT)与从头算的混合研究
Chemistry. 2008;14(1):344-57. doi: 10.1002/chem.200700865.
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Unbiased auxiliary basis sets for accurate two-electron integral approximations.用于精确双电子积分近似的无偏辅助基组。
J Chem Phys. 2007 Sep 21;127(11):114107. doi: 10.1063/1.2777146.
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Biomimetic high-valent non-heme iron oxidants for the cis-dihydroxylation and epoxidation of olefins.用于烯烃顺式二羟基化和环氧化的仿生高价非血红素铁氧化剂。
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Electronic structure of bispidine iron(IV) oxo complexes.双吡啶铁(IV)氧配合物的电子结构
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从Cu(I)-α-酮羧酸盐配合物和O₂生成Cu(II)-氧基/Cu(III)-氧代物种:关于配体效应和C-H活化反应性的计算机模拟研究

Generating Cu(II)-oxyl/Cu(III)-oxo species from Cu(I)-alpha-ketocarboxylate complexes and O2: in silico studies on ligand effects and C-H-activation reactivity.

作者信息

Huber Stefan M, Ertem Mehmed Z, Aquilante Francesco, Gagliardi Laura, Tolman William B, Cramer Christopher J

机构信息

Department of Chemistry, Center for Metals in Biocatalysis and Supercomputing Institute, University of Minnesota, 207 Pleasant St. SE, Minneapolis MN 55455, USA.

出版信息

Chemistry. 2009;15(19):4886-95. doi: 10.1002/chem.200802338.

DOI:10.1002/chem.200802338
PMID:19322769
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2878202/
Abstract

A mechanism for the oxygenation of Cu(I) complexes with alpha-ketocarboxylate ligands that is based on a combination of density functional theory and multireference second-order perturbation theory (CASSCF/CASPT2) calculations is elaborated. The reaction proceeds in a manner largely analogous to those of similar Fe(II)-alpha-ketocarboxylate systems, that is, by initial attack of a coordinated oxygen molecule on a ketocarboxylate ligand with concomitant decarboxylation. Subsequently, two reactive intermediates may be generated, a Cu-peracid structure and a CuO species, both of which are capable of oxidizing a phenyl ring component of the supporting ligand. Hydroxylation by the CuO species is predicted to proceed with a smaller activation free energy. The effects of electronic and steric variations on the oxygenation mechanisms were studied by introducing substituents at several positions of the ligand backbone and by investigating various N-donor ligands. In general, more electron donation by the N-donor ligand leads to increased stabilization of the more Cu(II)/Cu(III)-like intermediates (oxygen adducts and CuO species) relative to the more Cu(I)-like peracid intermediate. For all ligands investigated, the CuO intermediates are best described as Cu(II)-O(*-) species with triplet ground states. The reactivity of these compounds in C-H abstraction reactions decreases with more electron-donating N-donor ligands, which also increase the Cu-O bond strength, although the Cu-O bond is generally predicted to be rather weak (with a bond order of about 0.5). A comparison of several methods to obtain singlet energies for the reaction intermediates indicates that multireference second-order perturbation theory is likely more accurate for the initial oxygen adducts, but not necessarily for subsequent reaction intermediates.

摘要

阐述了一种基于密度泛函理论和多参考二阶微扰理论(CASSCF/CASPT2)计算的、α-酮羧酸盐配体与Cu(I)配合物的氧化机制。该反应的进行方式在很大程度上类似于类似的Fe(II)-α-酮羧酸盐体系,即通过配位的氧分子对酮羧酸盐配体的初始进攻并伴随脱羧反应。随后,可能生成两种反应中间体,一种是铜过酸结构,另一种是CuO物种,它们都能够氧化支撑配体的苯环部分。预计CuO物种的羟基化反应具有较小的活化自由能。通过在配体主链的几个位置引入取代基以及研究各种氮供体配体,研究了电子和空间变化对氧化机制的影响。一般来说,氮供体配体的电子给予作用越强,相对于更类似Cu(I)的过酸中间体,更类似Cu(II)/Cu(III)的中间体(氧加合物和CuO物种)的稳定性增加。对于所有研究的配体,CuO中间体最好描述为具有三重基态的Cu(II)-O(*-)物种。这些化合物在C-H抽象反应中的反应性随着供电子能力更强的氮供体配体而降低,这也增加了Cu-O键的强度,尽管通常预计Cu-O键相当弱(键级约为0.5)。对几种获得反应中间体单重态能量的方法的比较表明,多参考二阶微扰理论对于初始氧加合物可能更准确,但对于后续反应中间体不一定如此。