Guo Yuanyuan, Wang Quan, Li Hao, Gao Yixun, Xu Xuezhu, Tang Biao, Wang Yao, Yang Bai, Lee Yi-Kuen, French Paddy J, Zhou Guofu
Guangdong Provincial Key Laboratory of Optical Information Materials and Technology & Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou 510006, P. R. China.
Shenzhen Guohua Optoelectronics Tech. Co. Ltd. & Academy of Shenzhen Guohua Optoelectronics, Shenzhen 518110, P. R. China.
ACS Nano. 2022 Feb 22;16(2):2910-2920. doi: 10.1021/acsnano.1c09999. Epub 2022 Feb 3.
Fluorescent patterns with multiple functions enable high-security anti-counterfeiting labels. Complex material synthesis and patterning processes limit the application of multifunctional fluorescent patterns, so the technology of fluorescent patterning with tunable multimodal capabilities is becoming more necessary. In this work, an fluorescent patterning technology was developed using laser direct writing on solid cellulose film at ambient conditions without masks. The fluorescent intensity and surface microstructure of the patterns could be adjusted by programmable varying of the laser parameters simultaneously. During laser direct writing, carbon dots are generated in a cellulose ester polymer matrix, which significantly simplifies the fluorescent patterning process and reduces the manufacturing cost. Interestingly, the tunable fluorescent intensity empowers the fabrication of visual stereoscopic fluorescent patterns with excitation dependence, further improving its anti-counterfeiting performance. The obtained fluorescent patterns still show ultrahigh optical properties after being immersed in an acid/base solution (pH 5-12) over one month. In addition, the anti-UV performance of the obtained laser-patterned film with transmittance around 90% is comparable to that of commercial UV-resistant films. This work provided an advanced and feasible approach to fabricating programmable, performance-tunable, subtle fluorescent patterns in large-scale for industrial application.
具有多种功能的荧光图案可实现高安全性防伪标签。复杂的材料合成和图案化工艺限制了多功能荧光图案的应用,因此具有可调谐多模态功能的荧光图案化技术变得越发必要。在这项工作中,开发了一种在环境条件下无需掩膜,直接在固体纤维素膜上进行激光直写的荧光图案化技术。通过同时对激光参数进行可编程变化,可以调整图案的荧光强度和表面微观结构。在激光直写过程中,在纤维素酯聚合物基质中生成碳点,这显著简化了荧光图案化过程并降低了制造成本。有趣的是,可调谐荧光强度使得能够制造具有激发依赖性的视觉立体荧光图案,进一步提高其防伪性能。将所得荧光图案在酸/碱溶液(pH 5 - 12)中浸泡一个多月后,仍显示出超高光学性能。此外,所得激光图案化薄膜的抗紫外线性能(透过率约90%)与商用抗紫外线薄膜相当。这项工作为大规模制造可编程、性能可调谐、精细的荧光图案以用于工业应用提供了一种先进且可行的方法。