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Triplet carbenes with transition-metal substituents.

Ze-Jie LvKim A EisenlohrRobert NaumannThomas ReuterHendrik VerplanckeSerhiy DemeshkoRegine Herbst-IrmerKatja HeinzeMax C HolthausenSven Schneider
Published in: Nature chemistry (2024)
The extraordinary advances in carbene (R 1 -C-R 2 ) chemistry have been fuelled by strategies to stabilize the electronic singlet state via π interactions. In contrast, the lack of similarly efficient approaches to obtain authentic triplet carbenes with appreciable lifetimes beyond cryogenic temperatures hampers their exploitation in synthesis and catalysis. Transition-metal substitution represents a potential strategy, but metallocarbenes (M-C-R) usually represent high-lying excited electronic configurations of the well-established carbyne complexes (M≡C-R). Here we report the synthesis and characterization of triplet metallocarbenes (M-C-SiMe 3 , M = Pd II , Pt II ) that are persistent beyond cryogenic conditions, and their selective reactivity towards carbene C-H insertion and carbonylation. Bond analysis reveals significant stabilization by spin-polarized push-pull interactions along both π-bonding planes, which fundamentally differs from bonding in push-pull singlet carbenes. This bonding model, thus, expands key strategies for stabilizing the open-shell carbene electromers and closes a conceptual gap towards carbyne complexes.
Keyphrases
  • transition metal
  • energy transfer
  • quantum dots
  • magnetic resonance
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