Au-Coated ZnO Surface-Enhanced Raman Scattering (SERS) Substrates: Synthesis, Characterization, and Applications in Exosome Detection

IF 3.7 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Chemosensors Pub Date : 2023-11-05 DOI:10.3390/chemosensors11110554
Samuel Adesoye, Saqer Al Abdullah, Anjali Kumari, Gayani Pathiraja, Kyle Nowlin, Kristen Dellinger
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Abstract

Developing a biomolecular detection method that minimizes photodamage while preserving an environment suitable for biological constituents to maintain their physiological state is expected to drive new diagnostic and mechanistic breakthroughs. In addition, ultra-sensitive diagnostic platforms are needed for rapid and point-of-care technologies for various diseases. Considering this, surface-enhanced Raman scattering (SERS) is proposed as a non-destructive and sensitive approach to address the limitations of fluorescence, electrochemical, and other optical detection techniques. However, to advance the applications of SERS, novel approaches that can enhance the signal of substrate materials are needed to improve reproducibility and costs associated with manufacture and scale-up. Due to their physical properties and synthesis, semiconductor-based nanostructures have gained increasing recognition as SERS substrates; however, low signal enhancements have offset their widespread adoption. To address this limitation and assess the potential for use in biological applications, zinc oxide (ZnO) was coated with different concentrations (0.01–0.1 M) of gold (Au) precursor. When crystal violet (CV) was used as a model target with the synthesized substrates, the highest enhancement was obtained with ZnO coated with 0.05 M Au precursor. This substrate was subsequently applied to differentiate exosomes derived from three cell types to provide insight into their molecular diversity. We anticipate this work will serve as a platform for colloidal hybrid SERS substrates in future bio-sensing applications.
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au包覆ZnO表面增强拉曼散射(SERS)衬底:合成、表征及其在外泌体检测中的应用
开发一种生物分子检测方法,将光损伤降到最低,同时保留适合生物成分维持其生理状态的环境,有望推动新的诊断和机制突破。此外,各种疾病的快速和即时护理技术需要超灵敏的诊断平台。考虑到这一点,表面增强拉曼散射(SERS)被提出作为一种非破坏性和敏感的方法来解决荧光,电化学和其他光学检测技术的局限性。然而,为了推进SERS的应用,需要新的方法来增强衬底材料的信号,以提高与制造和放大相关的可重复性和成本。由于其物理性质和合成方法,半导体纳米结构作为SERS衬底得到了越来越多的认可;然而,低信号增强抵消了它们的广泛采用。为了解决这一限制并评估其在生物应用中的潜力,我们在氧化锌(ZnO)表面涂上不同浓度(0.01-0.1 M)的金(Au)前驱体。以结晶紫(CV)为模型靶,在ZnO表面包覆0.05 M Au前驱体时,增强效果最好。该底物随后被用于区分来自三种细胞类型的外泌体,以深入了解其分子多样性。我们预计这项工作将作为胶体混合SERS基板在未来生物传感应用中的平台。
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来源期刊
Chemosensors
Chemosensors Chemistry-Analytical Chemistry
CiteScore
5.00
自引率
9.50%
发文量
450
审稿时长
11 weeks
期刊介绍: Chemosensors (ISSN 2227-9040; CODEN: CHEMO9) is an international, scientific, open access journal on the science and technology of chemical sensors published quarterly online by MDPI.
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