Synthesis, processing, and microstructural tailoring of Pb-based and Pb-free halide perovskite thin films for large-area, efficient, and stable solar cells G211 (Conference Presentation)

N. Padture
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Abstract

Solution-processed thin-film perovskite solar cells (PSCs), where the record efficiency has rocketed from 3.8% to 22.7% - comparable to commercial silicon-based solar cells - in just eight years, offer unprecedented promise of low-cost, high-efficiency renewable electricity generation. Organic-inorganic halide perovskites (OIHPs) at the heart of PSCs have unique structures, which entail rotating organic cations inside inorganic cages, imparting them with desirable optical and electronic properties. To exploit these properties for PSCs application, the reliable deposition of high-quality OIHP thin films over large areas is critically important. The microstructures and grain-boundary networks in the resulting polycrystalline OIHP thin films are equally important as they control the PSC performance and stability. Fundamental phenomena pertaining to synthesis, crystallization, coarsening, and microstructural evolution involved in the processing of OIHP thin films for PSCs will be discussed with specific examples. Additionally, the discovery of Pb-free, Ti-based all-inorganic halide perovskites will be presented, together with the demonstration of viable PSCs based on these new halide perovskites. The overall goal of our research is to have deterministic control over scalable processing of tailored halide perovskite thin films with desired compositions, microstructures, and grain-boundary networks for large-area, high-efficiency, and stable PSCs.
用于大面积、高效、稳定太阳能电池的铅基和无铅卤化物钙钛矿薄膜的合成、加工和微结构定制G211(会议报告)
溶液处理薄膜钙钛矿太阳能电池(PSCs)的效率在短短八年内从3.8%飙升至22.7%,与商用硅基太阳能电池相当,为低成本、高效率的可再生能源发电提供了前所未有的希望。有机-无机卤化物钙钛矿(OIHPs)是psc的核心,它具有独特的结构,需要在无机笼内旋转有机阳离子,赋予它们理想的光学和电子特性。为了将这些特性应用于psc,在大面积上可靠地沉积高质量的OIHP薄膜是至关重要的。多晶OIHP薄膜的微观结构和晶界网络同样重要,因为它们控制着PSC的性能和稳定性。本文将以具体的例子讨论用于聚酰亚胺的OIHP薄膜的合成、结晶、粗化和微观结构演变等基本现象。此外,将介绍无铅、钛基全无机卤化物钙钛矿的发现,以及基于这些新卤化物钙钛矿的可行psc的演示。我们研究的总体目标是对定制卤化物钙钛矿薄膜的可扩展加工进行确定性控制,这些薄膜具有所需的成分、微结构和晶粒边界网络,可用于大面积、高效和稳定的psc。
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