Intragrain 3D perovskite heterostructure for high-performance pure-red perovskite LEDs.

Song, Yong-Hui; Li, Bo; Wang, Zi-Jian; Tai, Xiao-Lin; Ding, Guan-Jie; Li, Zi-Du; Xu, Huaiyu; Hao, Jing-Ming et al. · Nature · 2025

basic_science · Level V

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Abstract

Metal-halide perovskites are promising light-emitter candidates for next-generation light-emitting diodes (LEDs)<sup>1-8</sup>. Achieving high brightness and efficiency simultaneously in pure-red perovskite LEDs (PeLEDs) is an ongoing goal<sup>9,10</sup>. Three-dimensional (3D) CsPbI<sub>3-x</sub>Br<sub>x</sub> emitters have excellent carrier transport capability and high colour purity, which could allow efficient and ultrabright pure-red PeLEDs. However, such devices are prone to efficiency roll-off, resulting in low efficiency and low brightness under high current density. Here, by using electrically excited transient absorption spectroscopy, we discovered the efficiency roll-off was induced by hole leakage. Therefore, we developed a CsPbI<sub>3-</sub><sub>x</sub>Br<sub>x</sub> intragrain heterostructure containing narrow bandgap emitters and wide bandgap barriers to confine the injected carriers. The wide bandgap barrier was incorporated by introducing strongly bonding molecules into the [PbX<sub>6</sub>]<sup>4-</sup> framework to expand the 3D CsPbI<sub>3-</sub><sub>x</sub>Br<sub>x</sub> lattice. This strategy resulted in bright and efficient pure-red PeLEDs, with a high brightness of 24,600 cd m<sup>-2</sup>, maximum external quantum efficiency of 24.2% and low efficiency roll-off, maintaining a 10.5% external quantum efficiency at a high luminance of 22,670 cd m<sup>-2</sup>.