首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Stable and efficient air-processed perovskite solar cells employing low-temperature processed compact In2O3 thin films as electron transport materials
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Stable and efficient air-processed perovskite solar cells employing low-temperature processed compact In2O3 thin films as electron transport materials

机译:稳定高效的空气加工钙钛矿太阳能电池,采用低温加工紧凑型In2O3薄膜作为电子传输材料

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Perovskite solar cells (PSCs) have achieved remarkable power conversion efficiencies (PCEs) owing to their extraordinary optoelectronic properties. Electron transporting layer (ETL) has been proved to have a significant influence on the photovoltaic performance and stability of cell devices. Herein, for the first time, we prepare a low-temperature processed compact In2O3 film derived from a highly stable modified indium precursor solution as a promising ETL for stable and efficient air-processed PSCs. The addition of acetylacetone as a chelation ligand in the solution effectively inhibits the hydrolysis reactions by chelating In3+, thus contributing to the formation of compact In2O3 film at a low temperature of 200 degrees C. Dense CH3NH3PbI3 perovskite films with many microns-scale grains are fabricated using a scalable doctor-blade method under a harsh ambient condition (relative humidity of 40-50%). Using the proposed compact In2O3 film as ETL, the electron extraction and charge transport at the ETL/perovskite interface are significantly improved. As a result, the air-processed PSC based on compact In2O3 film delivers a champion PCE of 13.97%, greatly outperforming the device with a pristine In2O3 film (9.81%). In addition to high efficiency, the PSC incorporating proposed compact In2O3 film exhibits an excellent long-term stability, maintaining 94% of its initial PCE after stored in air for 31 days. This study demonstrates the feasibility of fabricating stable and efficient air-processed PSCs using low-temperature processed In2O3 ETL, which is expected to have a positive impact in the manufacturing community of solution-processed In2O3 film as well as air-processed PSCs. (C) 2020 Elsevier B.V. All rights reserved.
机译:由于其非凡的光电性质,钙钛矿太阳能电池(PSCs)已经取得了显着的功率转换效率(PCE)。已经证明电子传输层(ETL)对电池装置的光伏性能和稳定性产生了显着影响。在此,首次制备衍生自高稳定的改性的铟前体溶液的低温处理的紧凑型膜,作为稳定和有效的空气加工PSC的备用ETL。作为溶液中的螯合配体加入乙酰丙酮通过螯合In3 +加入水解反应,从而有助于在低温为200℃的低温下形成紧凑的In2O3膜。制造具有许多微米级颗粒的致密CH 3 NH 3 PBI3钙钛矿薄膜在严苛的环境条件下使用可伸缩的刮刀方法(相对湿度为40-50%)。使用所提出的紧凑型In2O3薄膜作为ETL,ETL / Perovskite界面处的电子提取和电荷传输显着改善。结果,基于紧凑型IN2O3薄膜的空气加工的PSC提供了13.97%的冠军PCE,极大地优于使用原始IN2O3薄膜(9.81%)。除了高效率之外,PSC掺入所提出的Compact In2O3膜的优异长期稳定性,在空气中储存31天后,将94%的初始PCE保持在300天。该研究表明,使用低温加工in2O3 Etl制造稳定和有效的空气加工PSC的可行性,这预计在溶液加工的液体和空气加工的PSC中具有积极影响。 (c)2020 Elsevier B.v.保留所有权利。

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