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Plasmonic colored nanopaper: a potential preventive healthcare tool against threats emerging from uncontrolled UV exposure

DOI:10.1088/2515-7647/ab41aa 期刊:Journal of Physics: Photonics 出版年份:2019 更新时间:2025-09-23 15:19:57
摘要: Preventive healthcare is crucial to hinder or delay the onset of disease, furthermore it contributes to healthy and productive lifestyles and saves resources allocated to public health. Herein, we explore how the plasmonic coupling of silver and gold nanoparticles embedded within nanopaper allows for potential preventive healthcare tools based on a change in plasmonic color. Particularly, we selected UV radiation exposure as a potential threat to health to be monitored via plasmonic colored nanopaper (PCN). Uncontrolled UV radiation exposure is not only known to provoke epidermal damage, but also to trigger leaching of hazardous compounds from polycarbonate containers. In this context, we engineered UV-responsive PCN devices whose sensing mechanism is based on UV photodegradation of silver nanoparticles. Since absorbance and scattering of metal nanoparticles strongly depend on their size and inter-particle distance, the resulting PCN detectors are able to warn of the potential UV radiation-induced threat via a visually observable plasmonic color change with a yellowish/reddish transition. Epidermal experiments with tattoo-like PCN devices prove the resulting detectors can change in color upon safe dose of sun exposure. Moreover, PCN detectors stuck on polycarbonate containers also change in color after moderate sun exposure. This cost-effective and lightweight nanophotonic device leads to a versatile preventive healthcare tool.
作者: Leydi Francisco-Aldana,Eden Morales-Narváez
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Exploring the use of plasmonic colored nanopaper (PCN) as a preventive healthcare tool to monitor UV radiation exposure, which can cause epidermal damage and leaching of hazardous compounds from polycarbonate containers.

The study successfully demonstrated the use of plasmonic colored nanopaper (PCN) as a versatile preventive healthcare tool for monitoring UV radiation exposure. PCN devices showed a visually observable plasmonic color change upon UV exposure, making them useful as wearable devices and smart labels on polycarbonate containers. The optimized PCN6 displayed sensitive modulation in plasmonic color, highlighting its potential for practical applications in preventive healthcare.

The study acknowledges that the visually observable color change of PCN devices can be influenced by the background color of the user's skin, requiring adaptation for different skin types. Additionally, the plasmonic color modulation in epidermal settings is not directly comparable to that on polycarbonate containers due to different material interfaces.

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