Cong Ming, Zhao Dianlong, Yang Jiayi, Xiao Guanjun, Zou Bo
State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun 130012, China.
Research (Wash D C). 2024 Sep 16;7:0476. doi: 10.34133/research.0476. eCollection 2024.
The interaction between organic and inorganic components in metal hybrid perovskites fundamentally determines the intrinsic optoelectronic performance. However, the underlying interaction sites have still remained elusive, especially for those non-hydrogen-bonded hybrid perovskites, thus largely impeding materials precise design with targeted properties. Herein, high pressure is utilized to elucidate the interaction mechanism between organic and inorganic components in the as-synthesized one-dimensional hybrid metal halide (DBU)PbBr (DBU = 1,8-diazabicyclo [5.4.0] undec-7-ene). The interaction sites are identified to be the N from DBU and the Br from inorganic framework by the indicative of enhanced Raman mode under high pressure. The change in interaction strength is indeed derived from the pressure modulation on both distance and spatial arrangement of the nearest Br and N, rather than traditional hydrogen-bonding effect. Furthermore, the enhanced interaction increased charge transfer, resulting in a cyan emission with photoluminescence quantum yields (PLQYs) of 86.6%. The enhanced cyan emission is particularly important for underwater communication due to the much less attenuation in water than at other wavelength emissions. This study provides deep insights into the underlying photophysical mechanism of non-hydrogen-bonded hybrid metal halides and is expected to impart innovative construction with superior performance.
金属杂化钙钛矿中有机和无机成分之间的相互作用从根本上决定了其本征光电性能。然而,潜在的相互作用位点仍然难以捉摸,尤其是对于那些非氢键杂化钙钛矿,这在很大程度上阻碍了具有目标性能的材料精确设计。在此,利用高压来阐明合成的一维杂化金属卤化物(DBU)PbBr(DBU = 1,8 - 二氮杂双环[5.4.0]十一碳 - 7 - 烯)中有机和无机成分之间的相互作用机制。通过高压下增强的拉曼模式表明,相互作用位点被确定为来自DBU的N和来自无机框架的Br。相互作用强度的变化确实源于压力对最近的Br和N的距离和空间排列的调制,而不是传统的氢键效应。此外,增强的相互作用增加了电荷转移,导致发出青色发射光,其光致发光量子产率(PLQYs)为86.6%。由于在水中的衰减比其他波长发射小得多,增强的青色发射对于水下通信尤为重要。这项研究为非氢键杂化金属卤化物的潜在光物理机制提供了深入见解,并有望实现具有卓越性能的创新结构。