Li Xiaotong, Hoffman Justin M, Kanatzidis Mercouri G
Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States.
Chem Rev. 2021 Feb 24;121(4):2230-2291. doi: 10.1021/acs.chemrev.0c01006. Epub 2021 Jan 21.
Two-dimensional (2D) halide perovskites have emerged as outstanding semiconducting materials thanks to their superior stability and structural diversity. However, the ever-growing field of optoelectronic device research using 2D perovskites requires systematic understanding of the effects of the spacer on the structure, properties, and device performance. So far, many studies are based on trial-and-error tests of random spacers with limited ability to predict the resulting structure of these synthetic experiments, hindering the discovery of novel 2D materials to be incorporated into high-performance devices. In this review, we provide guidelines on successfully choosing spacers and incorporating them into crystalline materials and optoelectronic devices. We first provide a summary of various synthetic methods to act as a tutorial for groups interested in pursuing synthesis of novel 2D perovskites. Second, we provide our insights on what kind of spacer cations can stabilize 2D perovskites followed by an extensive review of the spacer cations, which have been shown to stabilize 2D perovskites with an emphasis on the effects of the spacer on the structure and optical properties. Next, we provide a similar explanation for the methods used to fabricate films and their desired properties. Like the synthesis section, we will then focus on various spacers that have been used in devices and how they influence the film structure and device performance. With a comprehensive understanding of these effects, a rational selection of novel spacers can be made, accelerating this already exciting field.
二维(2D)卤化物钙钛矿因其卓越的稳定性和结构多样性,已成为杰出的半导体材料。然而,在使用二维钙钛矿的光电器件研究这一不断发展的领域中,需要系统地了解间隔基团对结构、性质和器件性能的影响。到目前为止,许多研究基于对随机间隔基团的反复试验测试,预测这些合成实验最终结构的能力有限,这阻碍了新型二维材料被纳入高性能器件的发现。在这篇综述中,我们提供了成功选择间隔基团并将其纳入晶体材料和光电器件的指导原则。我们首先总结各种合成方法,为有兴趣进行新型二维钙钛矿合成的团队提供一份指南。其次,我们阐述对何种间隔基团阳离子能够稳定二维钙钛矿的见解,随后对已被证明能稳定二维钙钛矿的间隔基团阳离子进行广泛综述,重点关注间隔基团对结构和光学性质的影响。接下来,我们对用于制备薄膜的方法及其所需性质进行类似的解释。与合成部分一样,我们随后将聚焦于已在器件中使用的各种间隔基团,以及它们如何影响薄膜结构和器件性能。通过全面了解这些影响,可以合理选择新型间隔基团,加速这个已然令人兴奋的领域的发展。