Tailoring Interlayer Charge Transfer Dynamics in 2D Perovskites with Electroactive Spacer Molecules.

钙钛矿(结构) 激子 超快激光光谱学 卤化物 载流子 化学物理 极化子 分子 材料科学 化学 光谱学 光电子学 结晶学 无机化学 凝聚态物理 物理 量子力学 电子 有机化学
作者
Yorrick Boeije,Wouter Van Gompel,Youcheng Zhang,Pratyush Ghosh,Szymon J. Zelewski,Arthur Maufort,Bart Roose,Zher Ying Ooi,Rituparno Chowdhury,Ilan Devroey,Stijn Lenaers,Alasdair Tew,Linjie Dai,Krishanu Dey,Hayden Salway,Richard H. Friend,Henning Sirringhaus,Laurence Lutsen,Dirk Vanderzande,Akshay Rao
出处
期刊:Cornell University - arXiv 被引量:1
标识
DOI:10.17863/cam.100548
摘要

The family of hybrid organic-inorganic lead-halide perovskites are the subject of intense interest for optoelectronic applications, from light-emitting diodes to photovoltaics to X-ray detectors. Due to the inert nature of most organic molecules, the inorganic sublattice generally dominates the electronic structure and therefore the optoelectronic properties of perovskites. Here, we use optically and electronically active carbazole-based Cz-Ci molecules, where Ci indicates an alkylammonium chain and i indicates the number of CH2 units in the chain, varying from 3 to 5, as cations in the two-dimensional (2D) perovskite structure. By investigating the photophysics and charge transport characteristics of (Cz-Ci)2PbI4, we demonstrate a tunable electronic coupling between the inorganic lead-halide and organic layers. The strongest interlayer electronic coupling was found for (Cz-C3)2PbI4, where photothermal deflection spectroscopy results remarkably reveal an organic-inorganic charge transfer state. Ultrafast transient absorption spectroscopy measurements demonstrate ultrafast hole transfer from the photoexcited lead-halide layer to the Cz-Ci molecules, the efficiency of which increases by varying the chain length from i = 5 to i = 3. The charge transfer results in long-lived carriers (10-100 ns) and quenched emission, in stark contrast to the fast (sub-ns) and efficient radiative decay of bound excitons in the more conventional 2D perovskite (PEA)2PbI4, in which phenylethylammonium (PEA) acts as an inert spacer. Electrical charge transport measurements further support enhanced interlayer coupling, showing increased out-of-plane carrier mobility from i = 5 to i = 3. This study paves the way for the rational design of 2D perovskites with combined inorganic-organic electronic properties through the wide range of functionalities available in the world of organics.

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