Confined Unimolecular Micelles for Directed Self-Assembly of Ultrastable Multiple-Responsive Ratiometric Fluorescent Ultrasmall Nanoparticle Assemblies.
Yaxuan ShiYuying LiQifu LiuLinan WangJunle ZhangGe ShiXiaoguang QiaoYanjie HeWenjie ZhangXinchang PangPublished in: The journal of physical chemistry letters (2024)
Ultrasmall fluorescent nanomaterials have been widely studied as novel fluorescent probes; however, these nanomaterials are prone to structural damage or aggregation, and the sensitivity and accuracy of most single emission fluorescence probes were very low. Therefore, the controlled synthesis of stable dual-emission ratiometric fluorescence ultrasmall assembly probes still remains a challenge. Herein, star-like polymer unimolecular micelles were utilized as a scaffold template to encapsulate fluorescent ultrasmall carbon quantum dots (CQDs) and gold nanoclusters (AuNCs) via the polymer template directed self-assembly strategy to obtain multiple-responsive ratiometric fluorescent assemblies. The assemblies were ultrastable, well-defined, and nearly monodispersed with controlled size, regular morphology, and pH- and thermal-responsiveness. The assemblies can be applied to realize rapid, sensitive, quantitative, and specific detection of Cu 2+ and GSH. Moreover, the convenient rapid real-time detection was realized via the combination of the visualized paper-based sensor, and the multilevel information encryption was also achieved.
Keyphrases
- living cells
- fluorescent probe
- quantum dots
- sensitive detection
- loop mediated isothermal amplification
- single molecule
- energy transfer
- iron oxide
- cancer therapy
- label free
- drug delivery
- small molecule
- oxidative stress
- mass spectrometry
- solid state
- hyaluronic acid
- health information
- molecularly imprinted
- liquid chromatography
- tandem mass spectrometry