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  4. Detection of pathogens using graphene quantum dots and gold nanoclusters on paper-based analytical devices
 
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Detection of pathogens using graphene quantum dots and gold nanoclusters on paper-based analytical devices

Journal
Sensors and Actuators B: Chemical
Journal Volume
363
Date Issued
2022
Author(s)
Yuan H
Lin J.-H
Dong Z.-S
Chen W.-T
Chan Y.K
Yeh Y.-C
Chen C.-F.
HUAN-TSUNG CHANG  
DOI
10.1016/j.snb.2022.131824
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85127471850&doi=10.1016%2fj.snb.2022.131824&partnerID=40&md5=5e0fb22b3759110c92ab55eeaa817c63
https://scholars.lib.ntu.edu.tw/handle/123456789/625497
Abstract
Pathogens are a persistent threat to human health, causing infectious disease and millions of deaths annually. The accurate and timely detection of pathogens is crucial in disease prevention, treatment, and monitoring. Although reliable detection methods are well established, many of them are still limited in use to clinical laboratories due to the need for costly and specialized instrumentation. In this study, we demonstrate a handheld and low-cost pathogen sensor consisting of a paper-based analytical device (μPAD) that can perform immunoassays and quantify analyte concentration by integrating with an automated color detection system that analyzes the color intensity of the μPAD. The core of the proposed sensor is the portable color detection system that can read the red-green-blue color of the paper emitted light from fluorescent nanomaterials, including graphene quantum dots (GQDs) and gold nanoclusters (AuNCs), which are conjugated with antibodies to indicate the immunoassay results, converting the presence of a pathogen to a colorful fluorescence signal. By adopting GQDs and AuNCs with high quantum yield and relatively high fluorescence intensity as the sensing signal, the paper-based detection system decreases the detection limit to as low as subnanogram/mL. Furthermore, GQDs and AuNCs can emit distinguishable fluorescence under the same light source (UV light) and possess limited background interference from the cellulose, enabling two or more analytes to be simultaneously detected with one UV light. Furthermore, a reaction time of just 10 min is needed, enabling diagnoses to be made in a timely manner and with high sensitivity. As a result, the proposed handheld pathogen sensor can rapidly detect the presence of pathogens with enhanced sensitivity and multiplexity, along with low instrumentation requirements, making it suitable for use in resource-limited settings where medical infrastructure is lacking. © 2022 Elsevier B.V.
Subjects
Immunoassay; Nanomaterials; On-site detection; Paper-based analytical device; Pathogen detection
SDGs

[SDGs]SDG3

[SDGs]SDG9

Other Subjects
Chemical detection; Color; Diagnosis; Fluorescence; Gold; Graphene; Graphene quantum dots; Health risks; Immunology; Light sources; Nanoclusters; Nanocrystals; Nanostructured materials; Pathogens; Color detection; Detection system; Gold nanocluster; Handhelds; Human health; Infectious disease; On-site detection; Paper-based analytical devices; Pathogen detection; UV-light; Semiconductor quantum dots; Color; Diagnosis; Fluorescence; Gold; Light Sources; Pathogens
Type
journal article

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