Khan Junaid, Marí-Guaita Júlia, Lobo Kenneth, Vescio Giovanni, Pareja-Rivera Carina, Mora-Seró Iván, Hernández Sergi, Cirera Albert, Garrido Blas
MIND-IN2UB, Department of Electronics and Biomedical Engineering, University of Barcelona, Carrer Martí i Franquès 1, 08028, Barcelona, Spain.
Institute of Advanced Materials (INAM), Universitat Jaume I, Castelló de la Plana, Spain.
Nanoscale. 2025 Jul 31;17(30):17803-17815. doi: 10.1039/d5nr01385b.
Inkjet printing has emerged as a sustainable and scalable approach for fabricating electronic and optoelectronic devices, offering precise material deposition with minimal waste. Among solution-processable materials, metal halide perovskites, particularly CsPbBr, have gained significant attention due to their exceptional optoelectronic properties, including high photoluminescence quantum yield, tuneable bandgap, and efficient charge transport. However, optimizing the inkjet-printing process remains a challenge, particularly post printing annealing since CsPbBr nanocrystals are sensitive to environmental conditions. In this study, we systematically investigate the effect of annealing temperature on the structural, morphological, and photoluminescence properties of inkjet-printed CsPbBr films. Our results reveal that thermal treatment plays a pivotal role in controlling grain size, crystallinity, defect density, and overall optoelectronic behaviour. Notably, a remarkable 70-fold enhancement in photoluminescence emission was observed, alongside a crystal structure morphology evolution from 3D to 0D and 2D structures through simple annealing offering transformative potential for optoelectronic applications. By elucidating the interplay between annealing conditions and film characteristics, this work provides key insights for optimizing inkjet-printed perovskite films, driving advancements in next-generation, sustainable, and high-performance printed electronics. The application of the printed films was successfully demonstrated as efficient colour conversion layers for optoelectronic devices.
喷墨打印已成为制造电子和光电器件的一种可持续且可扩展的方法,它能以最少的浪费实现精确的材料沉积。在可溶液加工的材料中,金属卤化物钙钛矿,特别是CsPbBr,因其优异的光电特性而备受关注,这些特性包括高光致发光量子产率、可调节的带隙以及高效的电荷传输。然而,优化喷墨打印工艺仍然是一项挑战,特别是在打印后的退火过程中,因为CsPbBr纳米晶体对环境条件敏感。在本研究中,我们系统地研究了退火温度对喷墨打印CsPbBr薄膜的结构、形态和光致发光特性的影响。我们的结果表明,热处理在控制晶粒尺寸、结晶度、缺陷密度和整体光电行为方面起着关键作用。值得注意的是,观察到光致发光发射显著增强了70倍,同时通过简单退火,晶体结构形态从3D演变为0D和2D结构,为光电子应用提供了变革潜力。通过阐明退火条件与薄膜特性之间的相互作用,这项工作为优化喷墨打印钙钛矿薄膜提供了关键见解,推动了下一代可持续高性能印刷电子产品的发展。印刷薄膜作为光电器件的高效颜色转换层的应用得到了成功展示。