Lv Xiaojing, Liu Chunyan, Shao Mingfa, Li Jin, Xia Minao, Cui Jiankun, Dong Juncheng, Ouyang Mi, Zhang Cheng
International Sci. & Tech. Cooperation Base of Energy Materials and Application, College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, 310014, People's Republic of China.
Nanotechnology. 2024 Jun 17;35(36). doi: 10.1088/1361-6528/ad47cd.
Electrochromic polymers (ECPs) have great application potential in flexible displays, and there is an increasing expectation of using green methods to form ECP films. Herein, we propose a modified microemulsion method to prepare cyan/magenta/yellow (C/M/Y) water-dispersed electrochromic polymer nanoparticles (WDEN) systems. Three polymer films (WDECP-C/M/Y) maintain similar electrochemical properties compared to their corresponding organic solvent-based polymer films. It is intriguing that WDECP-C/M/Y exhibit better electrochromic properties in terms of higher cycling stability (97.24%, 95.05%, and 52.84%, respectively) and faster switching time (0.94 s, 1.09 s, and 1.34 s for coloring time, respectively) due to the introduction of nanoparticles. In addition, it can achieve various desired colors by blending the C/M/Y WDEN systems in different ratios. The calculated chromaticity coordinates of the blending polymer films show close values to the experimental observation, and the calculated Δvalues range from 2.6 to 10.3, which may provide theoretical guidance for precisely color control. Finally, large-scale and patterned devices were assembled, which can achieve colored-to-colorless reversible electrochromism at a low driving voltage of 0-1.5 V. This work puts forward a universal and environmentally sustainable strategy to prepare WDEN systems, demonstrating their wide range of applications in display devices and electronic tags.
电致变色聚合物(ECPs)在柔性显示器中具有巨大的应用潜力,人们越来越期望使用绿色方法来形成ECP薄膜。在此,我们提出一种改进的微乳液法来制备青色/品红色/黄色(C/M/Y)水分散电致变色聚合物纳米颗粒(WDEN)体系。与相应的有机溶剂基聚合物薄膜相比,三种聚合物薄膜(WDECP-C/M/Y)保持相似的电化学性质。有趣的是,由于引入了纳米颗粒,WDECP-C/M/Y在更高的循环稳定性(分别为97.24%、95.05%和52.84%)和更快的切换时间(着色时间分别为0.94 s、1.09 s和1.34 s)方面表现出更好的电致变色性能。此外,通过以不同比例混合C/M/Y WDEN体系可以实现各种所需颜色。混合聚合物薄膜的计算色度坐标显示出与实验观察值接近的值,计算得到的Δ值范围为2.6至10.3,这可能为精确的颜色控制提供理论指导。最后,组装了大规模和图案化的器件,其可以在0 - 1.5 V的低驱动电压下实现彩色到无色的可逆电致变色。这项工作提出了一种通用且环境可持续的策略来制备WDEN体系,展示了它们在显示器件和电子标签中的广泛应用。