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等离子体激元太阳能电池:从合理设计到机制概述。

Plasmonic Solar Cells: From Rational Design to Mechanism Overview.

机构信息

Department of Chemistry and Nano Science, School of Natural Sciences, Ewha Womans University , 52, Ewhayeodae-gil, Seodaemun-gu, Seoul 03760, Republic of Korea.

出版信息

Chem Rev. 2016 Dec 28;116(24):14982-15034. doi: 10.1021/acs.chemrev.6b00302. Epub 2016 Dec 7.

Abstract

Plasmonic effects have been proposed as a solution to overcome the limited light absorption in thin-film photovoltaic devices, and various types of plasmonic solar cells have been developed. This review provides a comprehensive overview of the state-of-the-art progress on the design and fabrication of plasmonic solar cells and their enhancement mechanism. The working principle is first addressed in terms of the combined effects of plasmon decay, scattering, near-field enhancement, and plasmonic energy transfer, including direct hot electron transfer and resonant energy transfer. Then, we summarize recent developments for various types of plasmonic solar cells based on silicon, dye-sensitized, organic photovoltaic, and other types of solar cells, including quantum dot and perovskite variants. We also address several issues regarding the limitations of plasmonic nanostructures, including their electrical, chemical, and physical stability, charge recombination, narrowband absorption, and high cost. Next, we propose a few potentially useful approaches that can improve the performance of plasmonic cells, such as the inclusion of graphene plasmonics, plasmon-upconversion coupling, and coupling between fluorescence resonance energy transfer and plasmon resonance energy transfer. This review is concluded with remarks on future prospects for plasmonic solar cell use.

摘要

等离子体激元效应被提议作为解决薄膜光伏器件中光吸收有限的方法,并且已经开发出了各种类型的等离子体激元太阳能电池。本综述全面概述了等离子体激元太阳能电池的设计和制造及其增强机制的最新进展。首先根据等离子体衰减、散射、近场增强和等离子体能量转移的综合效应(包括直接热电子转移和共振能量转移)来讨论工作原理。然后,我们总结了基于硅、染料敏化、有机光伏和其他类型的太阳能电池(包括量子点和钙钛矿变体)的各种类型的等离子体激元太阳能电池的最新进展。我们还讨论了等离子体纳米结构的几个限制问题,包括其电学、化学和物理稳定性、电荷复合、窄带吸收和高成本。接下来,我们提出了一些可能有用的方法,可以提高等离子体电池的性能,例如包括石墨烯等离子体、等离子体上转换耦合以及荧光共振能量转移和等离子体共振能量转移之间的耦合。最后,我们对等离子体激元太阳能电池的未来前景进行了评论。

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