Unveiling the Effect of Symmetry-Breaking Charge Transfer on Intersystem Crossing in Group 14 TADF Emitters
Anitha S Gowda1, Marisa N Tordella1,2, Glenn P A Yap2
1C. Eugene Bennett Department of Chemistry, West Virginia University, Morgantown, West Virginia 26506, United States.
None:
Three organotetrel compounds (MePDPPh)EMe2 (E = Si, Ge, Sn) have been synthesized by the reaction of 2,6-bis(5-methyl-3-phenyl-1H-pyrrol-2-yl)pyridine (H2MePDPPh) with EMe2Cl2. All three molecules show photoluminescence (ΦPL = 0.66-0.75) through a combination of prompt fluorescence (PF) and thermally activated delayed fluorescence (TADF). Increased contributions from TADF for the heavier tetrel species imply more facile intersystem crossing due to intramolecular heavy-atom effects. Computational studies confirm that the lowest-energy singlet and triplet excited states in (MePDPPh)EMe2 result from localized transitions within the [MePDPPh]2- ligand, with only minor contributions from the tetrel atom. In contrast, the previously reported bis-PDP tetrel compounds E(MePDPPh)2 (E = Si, Ge, Sn), for which the lowest-energy singlet excited state was computed to be a symmetry-broken ligand-to-ligand charge transfer state, exhibit increased contributions from TADF compared to (MePDPPh)EMe2. Kinetic analysis of the TADF emission for all six compounds supports increased intersystem crossing and reverse intersystem crossing rate constants (kISC/rISC) and quantum yields (ΦISC/rISC) for E(MePDPPh)2 compared to (MePDPPh)EMe2. These results highlight the importance of symmetry-breaking charge transfer in facilitating intersystem crossing and provide a blueprint for the design of molecules that can access long-lived triplet states in the absence of heavy elements.
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