Electronic Effects of Aminoindenyl Ligands Coordinated to Manganese: Structures and Properties of a Mn0Metalloradical and Bimetallic Mn-I/MnIAdduct

David S. Tresp, Hagen Neugebauer, Stefan Grimme, Andreas Hansen, Demyan E. Prokopchuk

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

Studying the redox behavior of Earth-abundant metal complexes and understanding their reactivity under reducing conditions is of fundamental importance for activating small molecules. We present the electrochemical behavior and reactivity of amine-functionalized indenylmanganese(I) complexes that form the piano-stool complexes MnI(CO)3(IndR) (R = pyrrolidinyl, piperazinyl), which exhibit two cathodic redox waves via cyclic voltammetry (CV). Electrochemical, spectroscopic, and structural comparisons of these complexes with undecorated indenyl species reveal that the pyrrolidine-substituted tricarbonylmanganese complex MnIndPyrris the most electron-rich due to favorable π-donor effects from the amine to the ring system. These results are also strongly supported by DFT computations. Although CV studies show clean redox behavior, reaction outcomes in the presence of common chemical reductants are strongly dependent on the reagents used. The reduction of MnIndPyrrwith KC8in the presence of the encapsulating agent 2,2,2-Crypt led to the formation of a rare Mn0metalloradical, [K(2,2,2-Crypt)][MnIndPyrr], which was characterized by single-crystal X-ray diffraction, EPR spectroscopy, IR spectroscopy, and DFT calculations. Attempts to isolate a doubly reduced Mn-Iadduct in the presence of 18-crown-6 resulted in indenide anion loss that generated a mixed-valence Mn-I/MnIadduct, where the two metal centers were bound to a single indenyl moiety. This study emphasizes the dramatic differences between observing redox-reversible behavior on the electroanalytical scale and performing preparative-scale reduction reactions with alkali metals and encapsulating agents, as these reagents have a profound impact on the reaction outcome.

Original languageEnglish (US)
Pages (from-to)3055-3063
Number of pages9
JournalOrganometallics
Volume41
Issue number21
DOIs
StatePublished - Nov 14 2022
Externally publishedYes

All Science Journal Classification (ASJC) codes

  • Physical and Theoretical Chemistry
  • Organic Chemistry
  • Inorganic Chemistry

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