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Solid State Perovskite Solar Modules by Vacuum-vapor Assisted Sequential Deposition on Nd:YVO4 Laser Patterned Rutile TiO2 Nanorodsud

机译:Nd:YVO4激光图案化的金红石型TiO2纳米棒上真空-真空辅助顺序沉积的固态钙钛矿太阳能电池组件 ud

摘要

The past few years have witnessed remarkable progress in solution-processed methylammonium lead halide (CH3NH3PbX3,X - halide) perovskite solar cells (PSCs) with reported photoconversion efficiency (η) exceeding 20% in laboratory-scale devices and reaching up to 13% in their large area perovskite solar modules (PSMs). These devices mostly employ mesoporous TiO2 nanoparticles (NPs) as an electron transport layer (ETL) which provides a scaffold on which the perovskite semiconductor can grow. However, limitations exist which are due to trap-limited electron transport and non-complete pore filling. Herein, we have employed TiO2 nanorods (NRs), a material offering a two-fold higher electronic mobility and higher porefiling compared to their particle analogues, as an ETL. A crucial issue in NRs’ patterning over substrates is resolved by using precise Nd:YVO4 laser ablation, and a champion device with η∼8.1% is reported via a simple and low cost vacuum-vapor assisted sequential processing (VVASP) of a CH3NH3PbI3 film. Our experiments showed a successful demonstration of NRsbased PSMs via the V-VASP technique which can be applied to fabricate large area modules with a pin-hole free, smooth and dense perovskite layer which is required to build high efficiency devices.
机译:过去几年中,溶液加工的甲基铵卤化铅(CH3NH3PbX3,X-卤化物)钙钛矿太阳能电池(PSC)取得了显着进展,据报道其光电转换效率(η)在实验室规模的设备中超过20%,在实验室规模的设备中达到13%。他们的大面积钙钛矿太阳能电池组件(PSM)。这些设备大多采用中孔TiO2纳米颗粒(NPs)作为电子传输层(ETL),该层提供了可以在其中生长钙钛矿半导体的支架。但是,由于陷阱限制的电子传输和不完全的孔填充,存在局限性。在这里,我们采用了TiO2纳米棒(NRs)作为ETL,该材料比其颗粒类似物具有两倍的电子迁移率和更高的成孔性。通过使用精确的Nd:YVO4激光烧蚀解决了NRs在基板上构图的关键问题,并且通过简单且低成本的真空汽相辅助顺序加工(VVASP)报告了η〜8.1%的冠军设备。 CH3NH3PbI3膜。我们的实验表明,通过V-VASP技术成功展示了基于NRs的PSM,该技术可用于制造具有无针孔,光滑且致密的钙钛矿层的大面积模块,这是构建高效器件所需的。

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