开拓新视野:过氧化物太阳能电池无与伦比的效率和稳定性

Deepthi Jayan Koodali
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摘要

最近,以混合卤化物过氧化物为光子收集材料的过氧化物太阳能电池(PSCs)在效率方面取得了长足进步,使其成为太阳能电池研究的焦点。虽然 PSCs 能够表现出良好的光电转换能力,但由于它们在典型的工作环境中不稳定,尤其是在长期使用时,因此尚未实现商业化。研究 PSC 的降解机制以及提高其转换效率的方法,反过来又有助于开发解决降解问题的有效方案,并提高器件结构的稳定性。有关 PSCs 稳定性的理论和实验分析已广泛收集。本文对实现 PSCs 超高效率所面临的主要挑战以及克服其效率限制的方法进行了战略性综述,重点介绍了过氧化物结构的各种降解机制,随后详细分析了影响 PSCs 整体稳定性的各种因素。器件的性能和稳定性可以通过几种方法得到改善,包括成分工程、界面工程、器件封装等。本文介绍了可用于提高 PSCs 长期稳定性,同时确保器件制造成本效益的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Charting New Horizons: Unrivalled Efficiency and Stability in Perovskite Solar Cells
Perovskite solar cells (PSCs) with hybrid halide perovskite playing the role of photon‐harvesting materials have recently made strides in efficiency that have put them in the spotlight of solar cell research. Though PSCs are capable of exhibiting favorable photoconversion capabilities, they have not yet been commercialized as they are unstable in typical operating environments, especially for longer‐term usage. The mechanisms by which PSCs degrade, along with the methods to enhance their conversion efficiency, are studied, which, in turn, helps develop effective solutions to the degradation problem and increase the stability of the device architecture. A broad collection of theoretical and experimental analysis on stability of PSCs is available. In this article, a strategic review on the main challenges in attaining superior efficiency for PSCs along with the methods to overcome their efficiency limit is included providing emphasis to various degradation mechanisms of perovskite structures followed by a detailed examination of various factors impacting stability of PSCs as a whole. The performance and stability of devices can be improved by means of several methods including compositional engineering, interfacial engineering, device encapsulation, etc. The strategies that can be used to improve PSCs’ long‐term stability while ensuring cost‐effective device manufacture are covered here.
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