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Photophysical studies for Cu(<scp>i</scp>)-based halides: broad excitation bands and highly efficient single-component warm white-light-emitting diodes

80

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61

References

2023

Year

Abstract

Designing and synthesizing cuprous halide phosphors unifying efficient low-energy emission and a broad excitation band is still a great challenge. Herein, by rational component design, three novel Cu(i)-based metal halides, DPCu<sub>4</sub>X<sub>6</sub> [DP = (C<sub>6</sub>H<sub>10</sub>N<sub>2</sub>)<sub>4</sub>(H<sub>2</sub>PO<sub>2</sub>)<sub>6</sub>; X = Cl, Br, I], were synthesized by reacting <i>p</i>-phenylenediamine with cuprous halide (CuX), and they show similar structures, consisting of isolated [Cu<sub>4</sub>X<sub>6</sub>]<sup>2-</sup> units separated by organic layers. Photophysical studies uncover that the highly localized excitons and rigid environment give rise to highly efficient yellow-orange photoluminescence in all compounds with the excitation band spanning from 240 to 450 nm. The bright PL in DPCu<sub>4</sub>X<sub>6</sub> (X = Cl, Br) originates from self-trapped excitons due to the strong electron-phonon coupling. Intriguingly, DPCu<sub>4</sub>I<sub>6</sub> features a dual-band emissive characteristic, attributed to the synergistic effect of halide/metal-to-ligand charge-transfer (X/MLCT) and triplet cluster-centered (<sup>3</sup>CC) excited states. Benefiting from the broadband excitation, a high-performance white-light emitting diode (WLED) with a high color rendering index of 85.1 was achieved using single-component DPCu<sub>4</sub>I<sub>6</sub> phosphor. This work not only unveils the role of halogens in the photophysical processes of cuprous halides, but also provides new design principles for high-performance single-component WLEDs.

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