Yu Xihan, Fang Yuanyuan, Sun Xuening, Xie Ying, Liu Cailong, Wang Kai, Xiao Guanjun, Zou Bo
State Key Laboratory of Superhard Materials, College of Physics, Jilin University, 130012, Changchun, P. R. China.
Shandong Key Laboratory of Optical Communication Science and Technology, School of Physics Science and Information Technology, Liaocheng University, 252000, Liaocheng, P. R. China.
Angew Chem Int Ed Engl. 2024 Nov 11;63(46):e202412756. doi: 10.1002/anie.202412756. Epub 2024 Sep 23.
Simultaneous enhancement of free excitons (FEs) emission and self-trapped excitons (STEs) emission remains greatly challenging because of the radiative pathway competition. Here, a significant fluorescence improvement, associated with the radiative recombination of both FEs and STEs is firstly achieved in an unconventional ACI-type hybrid perovskite, (ACA)(MA)PbI (ACA=acetamidinium) crystals with {PbI} octahedron units, through hydrostatic pressure processing. Note that (ACA)(MA)PbI exhibits a 91.5-fold emission enhancement and considerable piezochromism from green to red in a mild pressure interval of 1 atm to 2.5 GPa. The substantial distortion of both individual halide octahedron and the Pb-I-Pb angles between two halide octahedra under high pressure indeed determines the pressure-tuning localized excitons behavior. Upon higher pressure, photocurrent enhancement is also observed, which is attributed to the promoted electronic connectivity in (ACA)(MA)PbI. The anisotropic compaction reduces the distance between neighboring organic molecules and {PbI} octahedra, leading to the enhancement of hydrogen bonding interactions. This work not only offers a deep understanding of the structure-optical relationships of ACI-type perovskites, but also presents insights into breaking the limits of luminescent efficiency by pressure-suppressed nonradiative recombination.
由于辐射途径竞争,同时增强自由激子(FEs)发射和自陷激子(STEs)发射仍然极具挑战性。在此,通过静水压力处理,在具有{PbI}八面体单元的非常规ACI型杂化钙钛矿(ACA)(MA)PbI(ACA = 乙脒)晶体中首次实现了与FEs和STEs的辐射复合相关的显著荧光增强。值得注意的是,(ACA)(MA)PbI在1个大气压至2.5吉帕的温和压力区间内表现出91.5倍的发射增强以及从绿色到红色的显著压致变色。高压下单个卤化物八面体以及两个卤化物八面体之间的Pb - I - Pb角的显著畸变确实决定了压力调节局域激子行为。在更高压力下,还观察到光电流增强,这归因于(ACA)(MA)PbI中电子连通性的增强。各向异性压实减小了相邻有机分子与{PbI}八面体之间的距离,导致氢键相互作用增强。这项工作不仅深入理解了ACI型钙钛矿的结构 - 光学关系,还为通过压力抑制非辐射复合突破发光效率极限提供了见解。