4.5 Article

Comprehensive Theoretical View of the [Cu2O2] Side-on-Peroxo-/Bis-μ-Oxo Equilibria

期刊

CHEMPHYSCHEM
卷 23, 期 14, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cphc.202200076

关键词

dicopper-oxygen complexes; density functional calculations; coupled cluster; multireference calculations; solvent effects

资金

  1. Ministry of the Education, Youth and Sports (MSMT CR) [LTAUSA19148]
  2. European Regional Development Fund
  3. OP RDE [CZ.02.1.01/0.0/0.0/16_019/0000729]
  4. Grant Agency of the Czech Republic [20-06451Y]
  5. IT4I supercomputer center (project of the MSMT CR) [LM2015070]

向作者/读者索取更多资源

In this study, the performance of various composite computational protocols for CBC sites was comprehensively calibrated and evaluated. Several calibrated DFT functionals were selected for the study of [Cu2O2] inorganic systems.
Coupled binuclear copper (CBC) sites are employed by many metalloenzymes to catalyze a broad set of biochemical transformations. Typically, the CBC catalytic sites are activated by the O-2 molecule to form various [Cu2O2] reactive species. This has also inspired synthesis and development of various biomimetic inorganic complexes featuring the CBC core. From theoretical perspective, the [Cu2O2] reactivity often hinges on the side-on-peroxo-dicopper(II) (P) vs. bis-mu-oxo-dicopper(III) (O) isomerism - an equilibrium that has become almost iconic in theoretical bioinorganic chemistry. Herein, we present a comprehensive calibration and evaluation of the performance of various composite computational protocols available in contemporary computational chemistry, involving coupled-cluster and multireference (relativistic) wave function methods, popular density functionals and solvation models. Starting with the well-studied reference [Cu2O2(NH3)(6)](2+) system, we compared the performance of electronic structure methods and discussed the relativistic effects. This allowed us to select several 'calibrated' DFT functionals that can be conveniently employed to study ten experimentally well-characterized [Cu2O2] inorganic systems. We mostly predicted the lowest-energy structures (P vs. O) of the studied systems correctly. In addition, we present calibration of the used electronic structure methods for prediction of the spectroscopic features of the [Cu2O2] core, mostly provided by the resonance Raman (rR) spectroscopy.

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