温度弹性单片钙钛矿/硅串联实现晶体前端TCO集成

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Ahmed Ali Said, , , Lorenzo Mardegan, , , Esma Ugur, , , Zhaoning Song, , , Pia Dally, , , Bumin Yildirim, , , Drajad S. Utomo, , , Arsalan Razzaq, , , Deniz Turkay, , , Christian M. Wolff, , , Monica Morales-Masis, , , Yanfa Yan, , , Henk J. Bolink, , , Erkan Aydin*, , and , Stefaan De Wolf*, 
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引用次数: 0

摘要

前透明导电氧化物(tco)结合了高导电性和宽带透明度,对于最小化钙钛矿/硅串联太阳能电池的电阻和光学损耗至关重要。而铟锌氧化物(IZO)是一种常用的前电极,其无定形的性质导致不希望的吸收损失在带边缘附近,从而限制串联电流。在这里,我们探索使用晶体zr掺杂氧化铟(IZrO),其带边缘具有更高的透明度,以取代IZO作为前电极。IZrO的完全结晶需要在190°C的温度下进行后退火,这引起了人们对其与通常使用的电荷传输层和钙钛矿层本身兼容性的担忧。我们的工作表明,在我们的串联中使用的空穴和电子选择触点(分别为NiOx/MeO-2PACz和C60/SnO2)可以承受这样的温度。相反,通过溶液和顺序杂化工艺沉积的宽禁带CsFAMAPbIxBr3-x钙钛矿组合物在高温退火后会降解。值得注意的是,我们通过综合分析确定了溶液处理和混合处理钙钛矿之间的实质性差异,后者表现出更高的温度弹性。因此,只有混合处理的钙钛矿/硅串联器件在高温退火后部分保持了其初始功率转换效率。我们的工作强调了开发高温弹性钙钛矿的紧迫性,以推动钙钛矿/硅串联光伏电池充分发挥其性能潜力,并且可以说,提高其在热应力下的整体可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Temperature-Resilient Monolithic Perovskite/Silicon Tandems Enabling Crystalline Front TCO Integration

Temperature-Resilient Monolithic Perovskite/Silicon Tandems Enabling Crystalline Front TCO Integration

Front transparent conductive oxides (TCOs) that combine high conductivity with broadband transparency are essential to minimize resistive and optical losses in perovskite/silicon tandem solar cells. While indium zinc oxide (IZO) is a commonly used front electrode, its amorphous nature leads to undesired absorption losses near the band edge, thereby constraining the tandem current. Here, we explore the use of crystalline Zr-doped indium oxide (IZrO), featuring a higher transparency at its band edge, to replace IZO as the front electrode. Full crystallization of IZrO requires postannealing at temperatures >190 °C, which raises concerns around its compatibility with typically employed charge transport layers and the perovskite layer itself. Our work reveals that hole- and electron-selective contacts (NiOx/MeO-2PACz and C60/SnO2, respectively) as used in our tandems endure such temperatures. Conversely, the wide bandgap CsFAMAPbIxBr3–x perovskite composition, deposited by solution and sequential hybrid processes, degrades upon high-temperature annealing. Notably, we identified substantial differences between the solution- and hybrid-processed perovskites through comprehensive analysis, where the latter exhibited higher temperature resilience. As a result, only hybrid-processed perovskite/silicon tandem devices partially retained their initial power conversion efficiency after high-temperature annealing. Our work underlines the urgency to develop high-temperature-resilient perovskites to advance perovskite/silicon tandem photovoltaics to their full performance potential, and, arguably, to improve their overall reliability under thermal stress.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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