Coloring semitransparent room-temperature fabricated perovskite solar cells via dielectric mirrors (Conference Presentation)

César Omar Ramírez Quiroz, Carina Bronnbauer, Ievgen Levchuk, M. Salvador, Yi Hou, K. Forberich, C. Brabec
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Abstract

While the development of perovskite-based semitransparent solar cells with competitive levels of transparency and efficiency offer a promising perspective towards building integrated photovoltaics, the color perception of perovskite films is of limited visual aesthetics, compromising their applicability to facades and windows. In the present work, we develop a technique to grow crystalline, ultrathin perovskite films through a solvent-solvent extraction process featuring full crystallization within few seconds at RT and under 45%RH environmental conditions. As a result we obtained the highest combination of efficiency and transparency to date for perovskite solar cells. We further improved the visual aesthetics of our devices by implementing dielectric mirrors. EQE and UV-Vis spectroscopic measurements are performed to fully characterize the device stacks featuring four different dielectric mirror configurations. By customizing the mirror to the near-IR absorption region of the perovskite, we could increase the Jsc by 18.7%, yielding a light blue appearance and showing 31.4% transparency at 3.5% electrical power efficiency. Both, the solar cells and the dielectric mirrors are fully-solution processed under ambient conditions and are easily transferable to roll-to-roll upscaling. Optical simulations support our experimental findings and provide a global perspective emulating full device stack appearance covering all the colors in the visible spectra. Transparency, photocurrent density contribution and chromaticity are finally simulated and analyzed. Based on the detailed analysis, we give an outlook on the performance – color – transparency roadmap for perovskite solar cells.
利用介电镜对室温制备的半透明钙钛矿太阳能电池着色(会议报告)
虽然基于钙钛矿的半透明太阳能电池的开发具有竞争性的透明度和效率水平,为建筑集成光伏发电提供了一个有希望的前景,但钙钛矿薄膜的颜色感知是有限的视觉美学,损害了它们在立面和窗户上的适用性。在本工作中,我们开发了一种通过溶剂-溶剂萃取工艺在RT和45%RH环境条件下在几秒钟内完全结晶的结晶超薄钙钛矿薄膜的技术。因此,我们获得了迄今为止钙钛矿太阳能电池效率和透明度的最高组合。我们通过实现介电镜进一步改善了我们设备的视觉美学。进行EQE和UV-Vis光谱测量,以充分表征具有四种不同介电镜配置的器件堆栈。通过将反射镜定制为钙钛矿的近红外吸收区,我们可以将Jsc提高18.7%,产生浅蓝色外观,并在3.5%的电功率效率下显示31.4%的透明度。太阳能电池和介电镜都是在环境条件下完全溶液处理的,并且很容易转移到卷对卷升级。光学模拟支持我们的实验结果,并提供了一个全局视角,模拟了覆盖可见光谱中所有颜色的完整器件堆栈外观。最后对透明度、光电流密度贡献和色度进行了模拟和分析。在详细分析的基础上,展望了钙钛矿太阳能电池的性能-颜色-透明度路线图。
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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