Xie Yujie, Tong Zaizai, Xia Tianlai, Worch Joshua C, Rho Julia Y, Dove Andrew P, O'Reilly Rachel K
School of Chemistry, University of Birmingham, Edgbaston, Birmingham, B15 2TT, UK.
School of Medicine, Shanghai University, Shanghai, 200444, China.
Adv Mater. 2024 Feb;36(8):e2308154. doi: 10.1002/adma.202308154. Epub 2023 Dec 10.
The design of nanosegregated fluorescent tags/barcodes by geometrical patterning with precise dimensions and hierarchies could integrate multilevel optical information within one carrier and enhance microsized barcoding techniques for ultrahigh-density optical data storage and encryption. However, precise control of the spatial distribution in micro/nanosized matrices intrinsically limits the accessible barcoding applications in terms of material design and construction. Here, crystallization forces are leveraged to enable a rapid, programmable molecular packing and rapid epitaxial growth of fluorescent units in 2D via crystallization-driven self-assembly. The fluorescence encoding density, scalability, information storage capacity, and decoding techniques of the robust 2D polymeric barcoding platform are explored systematically. These results provide both a theoretical and an experimental foundation for expanding the fluorescence storage capacity, which is a longstanding challenge in state-of-the-art microbarcoding techniques and establish a generalized and adaptable coding platform for high-throughput analysis and optical multiplexing.
通过具有精确尺寸和层次结构的几何图案化设计纳米分离荧光标签/条形码,可以将多级光学信息整合到一个载体中,并增强用于超高密度光学数据存储和加密的微型条形码技术。然而,在微/纳米尺寸矩阵中对空间分布的精确控制在材料设计和构建方面本质上限制了可及的条形码应用。在此,利用结晶力通过结晶驱动的自组装实现二维荧光单元的快速、可编程分子堆积和快速外延生长。系统地探索了稳健的二维聚合物条形码平台的荧光编码密度、可扩展性、信息存储容量和解码技术。这些结果为扩大荧光存储容量提供了理论和实验基础,这是现有微型条形码技术中长期存在的挑战,并建立了一个用于高通量分析和光学复用的通用且适应性强的编码平台。