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April 27, 2026Angewandte Chemie International Edition1 citationsOpen Access

Highly Efficient Mechanochromic Thermally Activated Delayed Fluorescence in the Deep Red to Near‐Infrared in Copper(I) 2.2Isoindolinophanyl‐Carbene Carbazolates

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AMAndré M. T. MuthigSMSabyasachi MaityAPAndreas Prüfer

Key Points

  • To explore the efficiency of copper(I) complexes in thermally activated delayed fluorescence for OLEDs and optical applications.
  • Synthesis of linear copper(I) complexes with [2.2]isoindolinophanyl-carbene ligands.
  • Analyses of the radiative decay rates and quantum yields of TADF under different conditions.
  • Evaluation of luminescence in single crystals and polymers, assessing mechanochromism effects.
  • Achieved reverse intersystem-crossing rates (k RISC) of 0.6–21·10^9 s −1 and quantum yields up to 0.8.
  • Demonstrated effective TADF in deep red to near-IR range, outperforming traditional triplet emitters.
  • Proved luminescent properties in electroluminescent devices through a deep-red OLED application.

Abstract

ABSTRACT Low energy triplet emitters are highly relevant for the development of OLEDs and fiber optics‐based IT applications, but typically suffer from nonradiative decay due to the energy gap law (EGL). Excited state deactivation can be limited by enhancing the radiative decay rate via thermally activated delayed fluorescence (TADF), bypassing spin‐forbidden phosphorescence. We report on linear copper(I) complexes bearing a recently reported 2.2isoindolinophanyl‐carbene (iPC) ligand as potent excited state π‐acceptor. The compounds show efficient TADF from ligand‐to‐ligand charge transfer ( 1/3 LLCT) states with reverse intersystem‐crossing (RISC) of k RISC = 0.6–21·10 9 s −1 , quantum yields of up to 0.8 and k TADF of 0.8‐1.9·10 6 s −1 that are among the fastest for Cu I emitters, outcompeting traditional triplet emitters based on Ir III and Pt II as well as organic deep red to near‐IR TADF emitters. While yellow to red emission is observed in single crystals, embedding the complexes into polymers or grinding shifts the luminescence into the deep red to near‐IR. The mechanochromism is due to disruption of C─H⋯π interactions between the ligands, reducing the energy gap between the ground state and 1/3 LLCT states. The Cu I iPC complexes bear potential for devices operating under electroluminescent conditions as demonstrated by a proof‐of‐concept deep‐red OLED application.

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Cite This Study

Muthig et al. (2026) studied this question.

synapsesocial.com/papers/69eefd9bfede9185760d45fehttps://doi.org/10.1002/anie.5338298
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