光子晶体
光子学
材料科学
异质结
折射率
光电子学
带隙
胶体
折射率对比度
高折射率聚合物
荧光
纳米技术
光学
化学工程
制作
物理
工程类
病理
医学
替代医学
作者
Kuo Zhong,Wei Yu,Yovan de Coene,Atsushi Yamada,Olga Krylychkina,Stijn Jooken,Olivier Deschaume,Carmen Bartic,Koen Clays
标识
DOI:10.1016/j.bios.2021.113577
摘要
To overcome the problems of refractive index matching and increased disorder when working with traditional heterostructure colloidal photonic crystals (CPCs) with dual or multiple photonic bandgaps (PBGs) for fluorescence enhancement in water, we propose the use of a chemical heterostructure in hollow sphere CPCs (HSCPCs). A partial chemical modification of the HSCPC creates a large contrast in wettability to induce the heterostructure, while the hollow spheres increase the refractive index difference when used in aqueous environment. With the platform, fluorescence enhancement reaches around 160 times in solution, and 72 times (signal-to-background ratio ~7 times) in cells during proof-of-concept live cardiomyocyte contractility experiments. Such photonic platform can be further exploited for chemical sensing, bioassays, and environmental monitoring. Moreover, the introduction of chemical heterostructures provides new design principles for functionalized photonic devices. • Hollow spheres improve the photonic bandgap effect (solving the refractive index matching problem with solid spheres). • Uniform sphere size used guarantees photonic crystal quality (different sizes for different bandgaps result in disorder). • Selective chemical modification introduces dual bandgap upon water wetting. • The developed photonic platform allows real-time fluorescence enhancement in living cells.
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