首页> 外文期刊>Electrochimica Acta >Flux-mediated growth strategy enables low-temperature fabrication of high-efficiency all-inorganic CsPbIBr2 perovskite solar cells
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Flux-mediated growth strategy enables low-temperature fabrication of high-efficiency all-inorganic CsPbIBr2 perovskite solar cells

机译:助熔剂介导的生长策略使低温制造高效全无机CSPBB12钙钛矿太阳能电池

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摘要

Flux-mediated crystal growth strategy is highlighted by its feasibility of low-temperature, fast growth of high-quality metal oxides, as a result of enhanced diffusion of reactants. Herein, this strategy is successfully extended for CsPbIBr2 film for the first time by simply incorporating a certain amount of CH3NH3Br into the precursor film. The CH3NH3Br species served as flux agents could dramatically boost the growth and coarsening of CsPbIBr2 grains. Hence, a dense and uniform CsPbIBr2 film consisted of micro-sized and high-crystallinity grains is attained at a low temperature of 200 degrees C. This processing temperature is lowered by one-third in contrast to the previous methods. More importantly, the carbon-based, all-inorganic perovskite solar cell (PSC) based on such desired CsPbIBr2 film yields an optimized efficiency of 10.82%, which stands a record-high value for CsPbIBr2-based PSCs without configuration modifications. Meanwhile, the PSC delivers excellent operation stability under light, thermal, and humidity stresses. Consequently, the work contributes to establish a facile approach to low-temperature preparation of high-quality CsPbIBr2 film for development of practical and efficient PSCs. (C) 2019 Elsevier Ltd. All rights reserved.
机译:通过其低温,高质量金属氧化物的可行性强调了助熔剂晶体生长策略,因为增强了反应物的扩散。在此,通过简单地将一定量的CH 3 NH 3BR掺入前体膜,首次成功地扩展该策略。作为助焊剂的CH 3 3BR物种可以大大提高CSPBIBR2颗粒的生长和粗化。因此,由微尺寸和高结晶度晶粒组成的致密和均匀的Cspbibr2膜在200℃的低温下获得。与之前的方法相比,该处理温度降低了三分之一。更重要的是,基于这种所需的Cspbibr2薄膜的基于碳的全无机钙钛矿太阳能电池(PSC)产生的优化效率为10.82%,这对基于CSPBibr2的PSC进行了记录高值而没有配置修改。同时,PSC在光,热和湿度和湿度应力下提供出色的操作稳定性。因此,该工作有助于建立轻度准备高质量CSPBIBR2薄膜的容易方法,用于开发实用和高效的PSC。 (c)2019 Elsevier Ltd.保留所有权利。

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