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  3. Advanced Luminescent Material for Multikey Static and Dynamic Anticounterfeiting and Information Encryption
 
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Advanced Luminescent Material for Multikey Static and Dynamic Anticounterfeiting and Information Encryption

Source
ACS APPLIED OPTICAL MATERIALS
ISSN
2771-9855
Date Issued
2025-07-16
Author(s)
Sajwan, Shruti
Singhal, Malika
Vishwakarma, Pradeep Kumar
Chauhan, Naveen
Singh, Sunil Kumar
DOI
10.1021/acsaom.5c00138
Abstract
Current static luminescent anticounterfeiting techniques exhibit limited security efficacy, highlighting an urgent demand for more advanced anticounterfeiting technologies. In this study, we present a persistent luminescent material, Zn2.95Ga2SnO8:Cr3+/Ho3+/Yb3+, which additionally demonstrates upconversion (UC) emission capabilities. The multifaceted emission characteristics of this material were utilized to create a high-concealment information encryption-decryption label. Our investigation indicates that the persistent luminescence (PersL) is attributable to the presence of suitably positioned traps within the phosphor matrix. Importantly, the phosphor also exhibits near-infrared (NIR) excited PersL, resulting from energy transfer processes between Ho3+ and Cr3+ ions. We successfully showcased the potential for dynamic anticounterfeiting and dual-mode information encryption-decryption by integrating this versatile material into anticounterfeiting patterns. The capacity to excite these phosphors using cost-effective UVA flashlights, combined with the visibility of their emissions to the naked eye and standard smartphone cameras, underscores their viability for large-scale applications in anticounterfeiting and secure information technologies.
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Sherpa Url
https://v2.sherpa.ac.uk/id/publication/43754
URI
http://repository.iitgn.ac.in/handle/IITG2025/19477
Subjects
Materials Science
Optics
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