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Updated: Sep 14, 2026

Fluorescent Lateral Flow Immunoassay Based on Quantum Dots Nanobeads
Published on: June 28, 2024
Ligand-directed Janus self-assembly with dual-aggregation enabling magneto-optical switching for enhanced lateral
Tao Liu1, Jiayi Sun1, Jun Huang1
1State Key Laboratory of Food Science and Resources, School of Food Science and Technology, Nanchang University, Nanchang, 330047, PR China; International Institute of Food Innovation, Co., Ltd., Nanchang University, Nanchang, 330200, PR China.
Abstract:
The spatial organization of disparate functionalities within a single nanoscale construct critically governs the performance of multifunctional probes, yet achieving precise structural control and exploiting emergent properties remains challenging. Here, we report an oleic acid (OA) ligand-density-directed self-assembly strategy that enables a controlled morphological transition from isotropic core-shell to fully segregated Janus multifunctional AIEgen-Fe3O4 nanoparticles (MAFNPs) comprising aggregation-induced emission luminogens (AIEgens) and superparamagnetic Fe3O4 clusters. This structural evolution is systematically correlated with optical and magnetic properties: Janus-segregated OAL-MAFNPs with unique "dual-aggregation" architecture effectively preserve AIEgen fluorescence (71.4% retention) while maximizing saturation magnetization (23.7 emu g-1) through dense magnetic clustering, in stark contrast to core-shell counterparts where mutual interference attenuates both functionalities. Leveraging this Janus geometry, we further uncover a unique magnetic-field-directed fluorescence modulation-orientation of the Fe3O4 hemisphere away from the optical path enhances emission by ∼22%-and integrate it into a lateral flow immunoassay (LFIA) for staphylococcal enterotoxin B (SEB). The resulting OAL-MAFNPs-LFIA achieves a stepwise sensitivity improvement from 1.39 ng mL-1 (probe alone), to 0.32 ng mL-1 (with magnetic enrichment), and finally to 0.23 ng mL-1 (with combined enrichment and orientation) in complex food matrices, representing a 26-fold improvement over conventional gold nanoparticle-based LFIA. This work establishes a ligand-regulated assembly paradigm for designing anisotropic Janus architectures, wherein spatial segregation preserves individual functionalities while enabling dynamic optical control, thereby opening new avenues for point-of-care diagnostics and biosensing.
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