Li Gang, Luo Wei, Che Zhiyuan, Pu YuYang, Deng Peng, Shi Lei, Ma Huiru, Guan Jianguo
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, 122 Luoshi road, Wuhan, 430070, P. R. China.
School of Materials Science and Engineering, Wuhan University of Technology, 122 Luoshi road, Wuhan, 430070, P. R. China.
Small. 2022 May;18(21):e2200662. doi: 10.1002/smll.202200662. Epub 2022 Apr 23.
Magnetic photonic crystals (PCs) possess attractive magnetic orientation, flexible pattern designability, and abundant angle-dependent colors, providing immense potential in anticounterfeiting field. However, all-solid magnetic PCs-based labels generally suffer from incompatibility with screen printing techniques, and inferior environmental endurance and mechanical properties. Herein, by developing a selective concentration polymerization method under magnetic field (H) in microheterogenous dimethyl sulfoxide-water binary solvents, individual tens-of-micrometer-length lipophilic magnetic photonic nanochains (PNCs) of full-width at half-maxima below 30 nm are fabricated, which, after simply dispersed in solvent-free cycloaliphatic epoxy resin, can be formulated as photonic inks to print robust anticounterfeiting labels through an H-assisted screen-printing technology. The as-printed labels possess vivid optically variable effects (OVEs) associated with the spatial distribution of H directionality, which are easy to identify by the naked eye but difficult to imitate and duplicate, while they show excellent environmental resistance and mechanical properties, promising practical applications in banknotes and high-grade commodities. The polymerization mechanism of the lipophilic PNCs is elucidated, and the OVEs are deciphered in numerical simulation. Besides an efficient way to build organic-inorganic hybrid nanostructures, the work provides advanced structural color pigments to achieve the practical application of magnetic PCs in such an anticounterfeiting field.
磁性光子晶体(PCs)具有引人注目的磁取向、灵活的图案可设计性以及丰富的角度依赖性颜色,在防伪领域具有巨大潜力。然而,基于全固态磁性PCs的标签通常与丝网印刷技术不兼容,并且环境耐久性和机械性能较差。在此,通过在微异质二甲基亚砜 - 水二元溶剂中在磁场(H)下开发一种选择性浓度聚合方法,制备出半高宽低于30nm的单个数十微米长的亲脂性磁性光子纳米链(PNCs),将其简单分散在无溶剂的脂环族环氧树脂中后,可配制成光子油墨,通过H辅助丝网印刷技术印刷出坚固的防伪标签。所印刷的标签具有与H方向性的空间分布相关的生动光学可变效应(OVE), 这些效应易于用肉眼识别但难以模仿和复制,同时它们表现出优异的耐环境性和机械性能,有望在纸币和高档商品中得到实际应用。阐明了亲脂性PNCs的聚合机理,并通过数值模拟对OVE进行了解析。除了构建有机 - 无机杂化纳米结构的有效方法外,这项工作还提供了先进的结构色颜料,以实现磁性PCs在这种防伪领域的实际应用。