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通过构建半透明微腔来提高半透明有机太阳能电池的效率。

Improving efficiency of semitransparent organic solar cells by constructing semitransparent microcavity.

机构信息

Faculty of Physics, University of Tabriz, Tabriz, 51665-163, Iran.

Photonics Devices Research Group, Research Institute of Applied Physics and Astronomy, University of Tabriz, Tabriz, 51665-163, Iran.

出版信息

Sci Rep. 2023 Jun 12;13(1):9508. doi: 10.1038/s41598-023-36488-4.

Abstract

Semitransparent organic solar cells have become attractive recently because of their photon harvesting in the near-infrared and ultraviolet range and passing in the visible light region. Semitransparent organic solar cells with Glass/MoO3/Ag/MoO3/PBDB-T:ITIC/TiO2/Ag/PML/1DPCs structure have been studied in this work and the effects microcavity with 1-dimensional photonic crystals (1DPCs) on the solar cell performance such as the power conversion efficiency, the average visible transmittance, Light utilization efficiency (LUE), the color coordinates in the CIE color space, and CIE LAB are investigated. The analytical calculation including the density of exactions and their displacement is used to model the devices. The model shows that the presence of microcavity can improve the power conversion efficiency by about %17 in comparison with the absence of microcavity. Although the transmission is decreasing slightly, microcavity does not change the color coordinates much. The device can transmit high-quality light with a near-white sensation to the human eye.

摘要

半透明有机太阳能电池因其在近红外和紫外光范围内的光子捕获以及在可见光区域的透过而受到关注。本工作研究了玻璃/MoO3/Ag/MoO3/PBDB-T:ITIC/TiO2/Ag/PML/1DPCs 结构的半透明有机太阳能电池,并研究了微腔对太阳能电池性能的影响,如功率转换效率、平均可见光透过率、光利用效率 (LUE)、CIE 色空间中的颜色坐标和 CIE LAB。该模型包括激发态密度及其位移的解析计算,用于对器件进行建模。该模型表明,与没有微腔的情况相比,微腔的存在可以将功率转换效率提高约 17%。尽管透光率略有下降,但微腔对颜色坐标的影响不大。该器件可以向人眼传输高品质的近白色感觉的光。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c6c/10260953/8d20119a63ed/41598_2023_36488_Fig1_HTML.jpg

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