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Chiral halide emitters demonstrate great potential in circularly polarized organic light-emitting diodes for future 3D displays. However, achieving circularly polarized luminescence with cost-effective and environmentally friendly halide materials remains a significant challenge. In this study, we introduced classic chiral organic ligands into a Cu 4 I 4 inorganic core to develop efficient circularly polarized luminescence (CPL)-active halide materials. Through the synergistic design of ( S / R )-3-methylmorpholine with the Cu 4 I 4 core, we successfully synthesized a pair of copper(I) enantiomers Cu 4 I 4 ( S / R -3-methylmorpholine) 4 ( S / R -Cu 4 I 4 ). These enantiomers not only exhibit distinct mirror-image CPL signals but also possess excellent thermal stability and high luminescence efficiency. OLED devices fabricated based on the S / R -Cu 4 I 4 enantiomers achieved high-performance circularly polarized electroluminescence (CPEL), with a brightness of 6506 cd m –2, an external quantum efficiency (EQE) of 4.2%, a CPEL dissymmetry factor ( g EL ) of +8 × 10 –3, and an extremely low efficiency roll-off of only ∼6% at 1000 cd m –2 brightness. This study demonstrates the feasibility of employing simple chiral ligands and low-cost metals to develop highly efficient CPL-active halide materials. The findings provide a practical strategy for constructing high-performance chiral copper-based halide emitters while also establishing the first pioneering implementation of Cu 4 I 4 cluster materials in CPEL applications.
Zhang et al. (Tue,) studied this question.