Division of Physics and Applied Physics, School of Physical and Mathematical Sciences , Nanyang Technological University , Singapore 637371 , Singapore.
Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Hubei Key Laboratory of Ferro & Piezoelectric Materials and Devices, Faculty of Physics & Electronic Sciences , Hubei University , Wuhan 430062 , China.
ACS Appl Mater Interfaces. 2018 Jun 13;10(23):19828-19835. doi: 10.1021/acsami.8b06105. Epub 2018 May 30.
All-inorganic cesium halide perovskite nanocrystals have attracted much interest in optoelectronic applications for the sake of the readily adjustable band gaps, high photoluminescence quantum yield, pure color emission, and affordable cost. However, because of the ineluctable utilization of organic surfactants during the synthesis, the structural and optical properties of CsPbBr nanocrystals degrade upon transforming from colloidal solutions to solid thin films, which plagues the device operation. Here, we develop a novel solvent-assisted surface engineering strategy, producing high-quality CsPbBr thin films for device applications. A good solvent is first introduced as an assembly trigger to conduct assembly in a one-dimensional direction, which is then interrupted by adding a nonsolvent. The nonsolvent drives the adjacent nanoparticles connecting in a two-dimensional direction. Assembled CsPbBr nanocrystal thin films are densely packed and very smooth with a surface roughness of ∼4.8 nm, which is highly desirable for carrier transport in a light-emitting diode (LED) device. Meanwhile, the film stability is apparently improved. Benefiting from this facile and reliable strategy, we have achieved remarkably improved performance of CsPbBr nanocrystal-based LEDs. Our results not only enrich the methods of nanocrystal surface engineering but also shed light on developing high-performance LEDs.
全无机卤化铯钙钛矿纳米晶体因其可调带隙、高光致发光量子产率、纯颜色发射和可承受的成本而在光电应用中引起了极大的兴趣。然而,由于在合成过程中不可避免地使用有机表面活性剂,CsPbBr 纳米晶体的结构和光学性质在从胶体溶液转变为固体薄膜时会退化,这困扰着器件的运行。在这里,我们开发了一种新的溶剂辅助表面工程策略,为器件应用生产高质量的 CsPbBr 薄膜。首先引入一种良溶剂作为组装触发剂,在一维方向上进行组装,然后通过加入非溶剂来中断组装。非溶剂驱动相邻纳米颗粒在二维方向上连接。组装的 CsPbBr 纳米晶薄膜紧密堆积,非常光滑,表面粗糙度约为 4.8nm,这非常有利于发光二极管 (LED) 器件中的载流子输运。同时,薄膜稳定性明显提高。得益于这种简单可靠的策略,我们实现了基于 CsPbBr 纳米晶的 LED 的性能显著提高。我们的研究结果不仅丰富了纳米晶表面工程的方法,而且为开发高性能 LED 提供了思路。