| Literature DB >> 33625825 |
Qiu-Jun Liu1, Yulian Li2, Jing-Cheng Xu2, Hai-Feng Lu1, Yuesheng Li2, Dong-Po Song2.
Abstract
Ultratrace quantitative detection based on fluorescence is highly desirable for many important applications such as environmental monitoring or disease diagnosis, which however has remained a great challenge because of limited and irregular fluorescence responses to analytes at ultralow concentrations. Herein the problem is circumvented via local enrichment and detection of analytes within a microsensor, that is, photonic porous microspheres grafted with aggregation-induced emission gens (AIEgens). The obtained microspheres exhibit dual structural and molecular functions, namely, bright structural colors and strong fluorescence. Large fluorescence quenching induced by nitrophenol compounds in an aqueous environment is observed at ultralow concentrations (10-12-10-8 mol/L), enabling quantitative detection at a ppb level (ng/L). This is achieved within a porous structure with good connectivity between the nanopores to improve analyte diffusion, an internal layer of poly(ethylene oxide) (PEO) for analyte enrichment via hydrogen bonding, and homogeneous distribution of AIEgens within the PEO layer for enhanced fluorescence quenching. The fluorescent porous microspheres can be readily obtained in a single step templated by well-ordered water-in-oil-in-water double emulsion droplets with AIE amphiphilic bottlebrush block copolymers as the effective stabilizer.Entities:
Keywords: aggregation-induced emission; block copolymer; porous microspheres; sensing; structural colors
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Year: 2021 PMID: 33625825 DOI: 10.1021/acsnano.1c00361
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881