Wei Keyu, Cui Minghuan, Hu Cejun, Wei Shuo, Zhang Zheng, Zhou Tong, Zhang Jia, Yue Xinxin, Yin Kailin, Sun Changjiu, Li Saisai, Feng Yanxing, Qaid Saif M H, Zhao Dongbing, Fu Xuewen, Zhang Wei, Qin Chaochao, Liu Yufang, Jiang Yuanzhi, Yuan Mingjian
State Key Laboratory of Advanced Chemical Power Sources, Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry, Nankai University, Tianjin, 300071, P. R. China.
Henan Key Laboratory of Infrared Spectrum Measures and Applications, School of Physics, Henan Normal University, Xinxiang, 453007, P. R. China.
Adv Mater. 2025 Jun;37(25):e2412041. doi: 10.1002/adma.202412041. Epub 2024 Nov 6.
Pure-halide reduced-dimensional perovskites, featuring large exciton binding energy and tunable bandgap, show great potential for high-efficiency deep-blue perovskite light-emitting diodes (PeLEDs). However, their efficiency, particularly in the low n-value phase domain ("n" represents the number of octahedral sheets), lags behind analogous perovskite emitters. Herein, it is demonstrated that the vibration of edge-dangling octahedra in the low n-value phase activates notorious exciton-phonon (EP) coupling, thereby deteriorating efficiency. To address this issue, an approach is reported to manage edge-state lattices by introducing tris(4-fluorophenyl) phosphine (TFP) ligands. Attributed to the large steric hindrance of TFP ligands and their strong binding affinity for edge-dangling octahedra, the edged-octahedral tilting reconstruction can effectively suppress lattice vibration and inhibit EP coupling. This strategy yields deep-blue emitting film with a spectral linewidth of 21 nm and a photoluminescence quantum yield of 85% at low excitation densities. The resulting PeLEDs achieve deep-blue emission at 469 nm, with a maximum luminance of 2,428 cd m and a maximum external quantum efficiency of 10.4%, marking them among the most efficient deep-blue PeLEDs reported. The strategy also showcases universality for higher n-value reduced-dimensional perovskites. It is believed that the observation, along with the edge-state management strategy, lays the groundwork for further advancements in reduced-dimensional perovskite optoelectronic devices.
纯卤化物低维钙钛矿具有大的激子结合能和可调节的带隙,在高效深蓝色钙钛矿发光二极管(PeLED)方面显示出巨大潜力。然而,它们的效率,特别是在低n值相域(“n”代表八面体片的数量),落后于类似的钙钛矿发光体。在此,证明了低n值相边缘悬挂八面体的振动激活了臭名昭著的激子-声子(EP)耦合,从而降低了效率。为了解决这个问题,报道了一种通过引入三(4-氟苯基)膦(TFP)配体来管理边缘态晶格的方法。由于TFP配体的大空间位阻及其对边缘悬挂八面体的强结合亲和力,边缘八面体倾斜重构可以有效抑制晶格振动并抑制EP耦合。该策略产生了在低激发密度下具有21nm光谱线宽和85%光致发光量子产率的深蓝色发光薄膜。所得的PeLED在469nm处实现深蓝色发射,最大亮度为2428cd m,最大外量子效率为10.4%,使其成为报道的最有效的深蓝色PeLED之一。该策略还展示了对更高n值低维钙钛矿的通用性。据信,这一观察结果以及边缘态管理策略为低维钙钛矿光电器件的进一步发展奠定了基础。