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Investigation of the Relationship between Quantum Yield, Charge-Transfer State, and Structure of the Ligands in Red-Emitting Heteroleptic Iridium(III) Complexes. | LitMetric

AI Article Synopsis

  • Iridium(III) organometallic complexes play a crucial role in the development of organic light-emitting diodes (OLEDs), but the link between their structure and light-emitting efficiency is not fully understood.*
  • Experimental and theoretical studies reveal that two similar iridium complexes, Red-pq and Red-piq, have different properties due to variations in the arrangement of their ligands, which affects their excited state geometry and quantum efficiency.*
  • The study finds that the greater geometric distortion in the Red-piq complex leads to reduced nonradiative decay, resulting in a higher quantum yield compared to Red-pq, thus highlighting how minor structural differences can impact performance in OLED applications.*

Article Abstract

Iridium(III) organometallic complexes have been a key component in commercialization of organic light-emitting diodes, but the direct relationship between their structural features and photophysical properties has not yet been fully established. Here, combined experimental and theoretical studies are carried out to elucidate the main factors governing the quantum efficiency of red phosphorescent emitters by using two heteroleptic iridium(III) complexes with high geometrical similarity. It is found that two red-emitting heteroleptic iridium complexes differing only in the steric direction of phenylquinoline (pq) and phenylisoquinoline (piq) ligands, annotated Red-pq and Red-piq, show clearly different degrees of distortion of the ligand geometry in the excited state, which leads to the higher quantum yield of Red-piq than that of Red-pq. This larger distortion of the piq ligand causes more suppressed nonradiative decay of Red-piq than that of Red-pq which is the important factor governing the higher quantum yield of Red-piq.

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Source
http://dx.doi.org/10.1021/acs.jpca.4c00914DOI Listing

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