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Organic-inorganic hybrid and inorganic halide perovskites: structural and chemical engineering, interfaces and optoelectronic properties

机译:有机 - 无机杂交和无机卤化物Perovskites:结构和化学工程,界面和光电性能

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This review aims to capture the emergent scenario of research in the field of organic-inorganic hybrid perovskites and inorganic halide perovskites as fuelled by the continuing excitement about these materials, their unique properties and their immense application potential in photovoltaics and optoelectronics. While some spectacular successes have already been achieved in respect of these applications, several challenges have also been encountered in terms of the stability of these materials under different ambients and stimuli, and their integration with other functional materials to generate new device architectures. Towards this end, this review discusses pertinent strategies to tune and control their device-worthy properties and eliminate their shortcomings to the extent feasible. These include (a) intelligent doping in these structurally and chemically sensitive systems, (b) the role of defects and strategies to mitigate them via innovative synthetic controls, (c) molecular engineering to control the dimensionality and new phases in these materials, and (d) the emergent understanding about the structure-chemistry-property relationships, especially the photophysical properties. We also address the bearing that these issues have on the ultimate realisation of robust high-efficiency solar cells, either in stand-alone or tandem configurations, as well as on high-performance light-emitting diodes. The insights gained by first-principles density functional theory calculations to understand the experimental observations and to predict new material designs are also discussed. The review is concluded with a section on the summary and outlook, wherein the authors' perspective on the emergent scenario is presented.
机译:本综述旨在捕捉有机-无机杂化钙钛矿和无机卤化物钙钛矿领域研究的新场景,这些材料的独特性质及其在光伏和光电子领域的巨大应用潜力不断引起人们的关注。虽然在这些应用方面已经取得了一些惊人的成功,但在这些材料在不同环境和刺激下的稳定性,以及它们与其他功能材料的集成以生成新的设备架构方面也遇到了一些挑战。为此,本综述讨论了调整和控制其设备性能的相关策略,并在可行的范围内消除其缺点。其中包括(a)这些结构和化学敏感系统中的智能掺杂,(b)缺陷的作用和通过创新合成控制减轻缺陷的策略,(c)控制这些材料中维度和新相的分子工程,以及(d)对结构-化学-性质关系的新理解,特别是光物理性质。我们还讨论了这些问题对最终实现坚固高效的太阳能电池(无论是独立或串联配置)以及高性能发光二极管的影响。本文还讨论了第一性原理密度泛函理论计算对理解实验观测和预测新材料设计所获得的见解。本综述在总结和展望部分结束,其中介绍了作者对紧急情况的看法。

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