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Updated: Jul 31, 2026

Multicolor Fluorescence Detection for Droplet Microfluidics Using Optical Fibers
Published on: May 5, 2016
Dual-mode sensor array based on silica-coated carbon dots with tunable fluorescence and phosphorescence for
Yongbo Wang1, Yuanna Ning2, Yanting Jia2
1School of Biological and Pharmaceutical Sciences, Shaanxi University of Science and Technology, Xi'an, 710021, PR China; School of Food Science and Engineering, Shaanxi University of Science and Technology, Xi'an, 710021, PR China.
Abstract:
Detection and discrimination of monoamine neurotransmitters (MNTs) are critical for early diagnosis but remain a substantial challenge due to their similar molecular structures and the complex interferences from biological sample matrices. Herein, dual-mode (fluorescence/phosphorescence) sensor arrays based on silica-coated carbon dots (CDs@SiO2) were developed for discrimination and detection of multiple MNTs. The synthesized CDs@SiO2 displayed dual fluorescence (395 nm) and phosphorescence (520 nm) emission, enabling a one-component dual-mode sensor array for discrimination of catecholamines (100 % accuracy). The CDs-RhB@SiO2 nanocomposites, prepared by co-confining CDs and rhodamine B (RhB) in silica, exhibited orange fluorescence (585 nm) and red phosphorescence (600 nm). This structure enables efficient FRET (77.4 %) from CDs to RhB, yielding long-wavelength phosphorescence. Subsequently, a two-component four-channel sensor array utilizing CDs@SiO2 and CDs-RhB@SiO2 was developed. By leveraging distinct fluorescence (λem = 395/585 nm) and phosphorescence (λem = 520/600 nm) signals, the sensor array achieved precise discrimination (100 % accuracy) and quantitative detection of multiple MNTs with a low detection limit of 1.25 μM. This work provides a strategy to develop multimode sensor arrays with low background interference, demonstrating promise as a proof-of-concept platform that may support early diagnostic applications.
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