Quantum and Dielectric Confinement Effects in Lower-Dimensional Hybrid Perovskite Semiconductors

卤化物 异质结 纳米技术 光伏 钙钛矿(结构) 半导体 纳米结构 化学 电介质 范德瓦尔斯力 光电子学 量子点 材料科学 工程物理 物理 分子 结晶学 无机化学 生物 有机化学 光伏系统 生态学
作者
Claudine Katan,Nicolas Mercier,Jacky Even
出处
期刊:Chemical Reviews [American Chemical Society]
卷期号:119 (5): 3140-3192 被引量:842
标识
DOI:10.1021/acs.chemrev.8b00417
摘要

Hybrid halide perovskites are now superstar materials leading the field of low-cost thin film photovoltaics technologies. Following the surge for more efficient and stable 3D bulk alloys, multilayered halide perovskites and colloidal perovskite nanostructures appeared in 2016 as viable alternative solutions to this challenge, largely exceeding the original proof of concept made in 2009 and 2014, respectively. This triggered renewed interest in lower-dimensional hybrid halide perovskites and at the same time increasingly more numerous and differentiated applications. The present paper is a review of the past and present literature on both colloidal nanostructures and multilayered compounds, emphasizing that availability of accurate structural information is of dramatic importance to reach a fair understanding of quantum and dielectric confinement effects. Layered halide perovskites occupy a special place in the history of halide perovskites, with a large number of seminal papers in the 1980s and 1990s. In recent years, the rationalization of structure-properties relationship has greatly benefited from new theoretical approaches dedicated to their electronic structures and optoelectronic properties, as well as a growing number of contributions based on modern experimental techniques. This is a necessary step to provide in-depth tools to decipher their extensive chemical engineering possibilities which surpass the ones of their 3D bulk counterparts. Comparisons to classical semiconductor nanostructures and 2D van der Waals heterostructures are also stressed. Since 2015, colloidal nanostructures have undergone a quick development for applications based on light emission. Although intensively studied in the last two years by various spectroscopy techniques, the description of quantum and dielectric confinement effects on their optoelectronic properties is still in its infancy.
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