杂化钙钛矿:光电器件中的载流子复合效应

O. Amora
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In this chapter, an analysis is provided on most recent research results about the different mechanisms, location and relationships of charge carrier recombination in PSCs. After introducing the theoretical framework, including the main transport equations and relations with luminescence techniques, the radiative and non-radiative natures of recombination are commented and compared in terms of main contributions. Also, the effects of changing the perovskite composition and morphology are surveyed. The location of the recombination processes, whether in the bulk material or towards the interface, are tackled, as well as related features with the current-voltage hysteresis. On the latter, and along the complete chapter, the dual ionic-electronic conductivity of hybrid lead halide perovskites is particularly attended. ults particularly puzzling. 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引用次数: 0

摘要

杂化卤化铅钙钛矿作为光伏应用中最有前途的材料之一出现在2010年代初。可以使用简单和低成本的基于解决方案的制造工艺,获得效率超过20%的钙钛矿太阳能电池(PSCs)。然而,仍有一些主要的问题需要克服,如稳定性,以及对复合机制的普遍理解。2010年代初,卤化铅钙钛矿作为光伏应用中最有前途的材料之一出现。可以使用简单和低成本的基于解决方案的制造工艺,获得效率超过20%的钙钛矿太阳能电池(PSCs)。然而,仍有一些主要问题需要克服,比如稳定性,对重组机制的一般理解结果尤其令人困惑。在这一章中,我们对近年来关于psc中载流子复合的不同机制、位置和关系的研究成果进行了分析。在介绍了理论框架,包括主要输运方程和与发光技术的关系后,对复合的辐射性质和非辐射性质进行了评述和比较。研究了钙钛矿组成和形貌变化对钙钛矿的影响。复合过程的位置,无论是在块状材料中还是在界面上,以及与电流-电压滞后的相关特征都得到了解决。在后者,并沿着整个章节,特别注意了杂化卤化铅钙钛矿的双离子-电子电导率。Â的结果特别令人费解。在这一章中,我们对近年来关于psc中载流子复合的不同机制、位置和关系的研究成果进行了分析。在介绍了理论框架,包括主要输运方程和与发光技术的关系后,对复合的辐射性质和非辐射性质进行了评述和比较。研究了钙钛矿组成和形貌变化对钙钛矿的影响。复合过程的位置,无论是在块状材料中还是在界面上,以及与电流-电压滞后的相关特征都得到了解决。在后者,并沿着整个章节,特别注意了杂化卤化铅钙钛矿的双离子-电子电导率。杂化卤化铅钙钛矿在2010年代初出现,是光伏应用中最有前途的材料之一。可以使用简单和低成本的基于解决方案的制造工艺,获得效率超过20%的钙钛矿太阳能电池(PSCs)。然而,仍有一些主要问题需要克服,比如稳定性,对重组机制的一般理解结果尤其令人困惑。在这一章中,我们对近年来关于psc中载流子复合的不同机制、位置和关系的研究成果进行了分析。在介绍了理论框架,包括主要输运方程和与发光技术的关系后,对复合的辐射性质和非辐射性质进行了评述和比较。研究了钙钛矿组成和形貌变化对钙钛矿的影响。复合过程的位置,无论是在块状材料中还是在界面上,以及与电流-电压滞后的相关特征都得到了解决。在后者,并沿着整个章节,特别注意了杂化卤化铅钙钛矿的双离子-电子电导率。
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Hybrid perovskites: Charge carrier recombination effects in photovoltaic devices
Hybrid lead halide perovskites emerged at the beginning of 2010s decade as one of the most promising materials for photovoltaic applications. Easy and low-cost solution-based fabrication processes can be used, obtaining perovskite solar cells (PSCs) with efficiencies above 20%. However, there still are some major issues to overcome, like stabiliddty, and the general understanding of the recombination mechanisms resHybrid lead halide perovskites emerged at the beginning of 2010s decade as one of the most promising materials for photovoltaic applications. Easy and low-cost solution-based fabrication processes can be used, obtaining perovskite solar cells (PSCs) with efficiencies above 20%. However, there still are some major issues to overcome, like stability, and the general understanding of the recombination mechanisms results particularly puzzling. In this chapter, an analysis is provided on most recent research results about the different mechanisms, location and relationships of charge carrier recombination in PSCs. After introducing the theoretical framework, including the main transport equations and relations with luminescence techniques, the radiative and non-radiative natures of recombination are commented and compared in terms of main contributions. Also, the effects of changing the perovskite composition and morphology are surveyed. The location of the recombination processes, whether in the bulk material or towards the interface, are tackled, as well as related features with the current-voltage hysteresis. On the latter, and along the complete chapter, the dual ionic-electronic conductivity of hybrid lead halide perovskites is particularly attended. ults particularly puzzling. In this chapter, an analysis is provided on most recent research results about the different mechanisms, location and relationships of charge carrier recombination in PSCs. After introducing the theoretical framework, including the main transport equations and relations with luminescence techniques, the radiative and non-radiative natures of recombination are commented and compared in terms of main contributions. Also, the effects of changing the perovskite composition and morphology are surveyed. The location of the recombination processes, whether in the bulk material or towards the interface, are tackled, as well as related features with the current-voltage hysteresis. On the latter, and along the complete chapter, the dual ionic-electronic conductivity of hybrid lead halide perovskites is particularly attended. ybrid lead halide perovskites emerged at the beginning of 2010s decade as one of the most promising materials for photovoltaic applications. Easy and low-cost solution-based fabrication processes can be used, obtaining perovskite solar cells (PSCs) with efficiencies above 20%. However, there still are some major issues to overcome, like stability, and the general understanding of the recombination mechanisms results particularly puzzling. In this chapter, an analysis is provided on most recent research results about the different mechanisms, location and relationships of charge carrier recombination in PSCs. After introducing the theoretical framework, including the main transport equations and relations with luminescence techniques, the radiative and non-radiative natures of recombination are commented and compared in terms of main contributions. Also, the effects of changing the perovskite composition and morphology are surveyed. The location of the recombination processes, whether in the bulk material or towards the interface, are tackled, as well as related features with the current-voltage hysteresis. On the latter, and along the complete chapter, the dual ionic-electronic conductivity of hybrid lead halide perovskites is particularly attended.
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