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用于光伏的单晶甲基铵铅卤化物钙钛矿材料。

Monocrystalline Methylammonium Lead Halide Perovskite Materials for Photovoltaics.

作者信息

Capitaine Anna, Sciacca Beniamino

机构信息

Aix Marseille Univ, CNRS, CINaM, Marseille, 13288, France.

出版信息

Adv Mater. 2021 Dec;33(52):e2102588. doi: 10.1002/adma.202102588. Epub 2021 Oct 15.

DOI:10.1002/adma.202102588
PMID:34652035
Abstract

Lead halide perovskite solar cells have been gaining more and more interest. In only a decade, huge research efforts from interdisciplinary communities enabled enormous scientific advances that rapidly led to energy conversion efficiency near that of record silicon solar cells, at an unprecedented pace. However, while for most materials the best solar cells were achieved with single crystals (SC), for perovskite the best cells have been so far achieved with polycrystalline (PC) thin films, despite the optoelectronic properties of perovskite SC are undoubtedly superior. Here, by taking as example monocrystalline methylammonium lead halide, the authors elaborate the literature from material synthesis and characterization to device fabrication and testing, to provide with plausible explanations for the relatively low efficiency, despite the superior optoelectronics performance. In particular, the authors focus on how solar cell performance is affected by anisotropy, crystal orientation, surface termination, interfaces, and device architecture. It is argued that, to unleash the full potential of monocrystalline perovskite, a holistic approach is needed in the design of next-generation device architecture. This would unquestionably lead to power conversion efficiency higher than those of PC perovskites and silicon solar cells, with tremendous impact on the swift deployment of renewable energy on a large scale.

摘要

卤化铅钙钛矿太阳能电池越来越受到关注。在仅仅十年的时间里,跨学科领域的巨大研究努力取得了巨大的科学进展,以前所未有的速度迅速使能量转换效率接近 record 硅太阳能电池。然而,虽然对于大多数材料来说,最好的太阳能电池是用单晶(SC)制成的,但对于钙钛矿来说,迄今为止最好的电池是用多晶(PC)薄膜制成的,尽管钙钛矿 SC 的光电特性无疑更优越。在这里,作者以单晶甲基铵卤化铅为例,详细阐述了从材料合成与表征到器件制造与测试的文献,为尽管具有优越的光电性能但效率相对较低提供合理的解释。特别是,作者关注太阳能电池性能如何受到各向异性、晶体取向、表面终止、界面和器件结构的影响。有人认为,为了充分发挥单晶钙钛矿的潜力,在下一代器件结构设计中需要一种整体方法。这无疑将导致功率转换效率高于 PC 钙钛矿和硅太阳能电池,对大规模快速部署可再生能源产生巨大影响。

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