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Title
Interfacial dipole moment engineering in self-recoverable mechanoluminescent platform
Issued Date
2024-12
Citation
Jeong, Hong In. (2024-12). Interfacial dipole moment engineering in self-recoverable mechanoluminescent platform. Materials Today, 81, 4–11. doi: 10.1016/j.mattod.2024.09.020
Type
Article
Author Keywords
Self-recoverableDipole momentTriboelectric fieldSurface functionalizationMechanoluminescence
ISSN
1369-7021
Abstract
Harnessing the potential of mechanoluminescence (ML) for practical applications necessitates innovations that maximize brightness while simplifying the platform. Our study introduces a pioneering interfacial modification technique that enhances the internal triboelectric field in a self-recoverable ML platform based on zinc sulfide@metal oxide phosphor and a polydimethylsiloxane matrix. By chemically functionalizing the surface of metal oxide shells with benzoic acid derivatives, we modulate surface charge density thereby intensifying the triboelectric field within the ML platform. Utilizing a range of derivatives with varying dipole moments establishes a direct relationship between dipole moment strength and triboelectric enhancement. Notably, introducing aminobenzoic acid (ABA) onto the surface of the aluminum oxide (AlOx) shell results in a significant increase in ML brightness. Our strategy to easily adjust the ML brightness has been applied to anti-counterfeiting applications. Our study not only reveals the correlation between surface triboelectric fields and ML performance but also provides the possibility for practical use of self-recoverable ML platforms in various application fields, including smart textiles, health monitoring systems, and wearable displays. © 2024 Elsevier Ltd
URI
http://hdl.handle.net/20.500.11750/57345
DOI
10.1016/j.mattod.2024.09.020
Publisher
Elsevier
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고서진
Ko, Seo-Jin고서진

Department of Energy Science and Engineering

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