Long-Term Functional Stability of Organic and Inorganic Modified Luminescent Lyocell Fibers for Security Applications.
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| Title: | Long-Term Functional Stability of Organic and Inorganic Modified Luminescent Lyocell Fibers for Security Applications. |
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| Authors: | Erdman, Aleksandra1 (AUTHOR), Gabor, Jadwiga2 (AUTHOR), Brzezińska, Natalia2,3 (AUTHOR), Pyza, Maciej2,4 (AUTHOR), Popczyk, Magdalena1,2 (AUTHOR), Kulpiński, Piotr2,3 (AUTHOR), Swinarew, Andrzej S.2,3,4 (AUTHOR) andrzej.swinarew@us.edu.pl |
| Source: | Materials (1996-1944). May2026, Vol. 19 Issue 9, p1767. 16p. |
| Subjects: | Cellulose fibers, Inorganic compounds, Chemical reactions, Phosphors, Mechanical behavior of materials, Forgery, Photodegradation |
| Abstract: | Luminescent cellulose-based fibers are promising materials for anti-counterfeiting applications because they can provide covert and spectrally distinguishable optical signatures compatible with paper- and textile-based authentication systems. In this study, Lyocell fibers modified with selected inorganic and organic luminescent compounds were subjected to accelerated xenon-lamp aging in order to evaluate their functional durability under simulated environmental exposure. The effects of aging on the mechanical properties and luminescent behavior of the fibers were investigated. The results showed that accelerated aging led to a reduction in tensile strength and elongation at break for all fiber variants, although the extent of these changes depended on the type of modifier. Spectroscopic analysis indicated that, despite changes in emission intensity, the characteristic luminescent responses of the modified fibers remained detectable after aging. These findings suggest that luminescent Lyocell fibers can retain their practical identification potential under the applied test conditions and may be considered promising candidates for use as covert security elements. The observed stability is attributed to the immobilization of luminophores within the cellulose matrix and the intrinsic photostability of the applied luminescent systems. At the same time, the study highlights the need for further investigations into the structural and photophysical stability of such systems under long-term environmental exposure. [ABSTRACT FROM AUTHOR] |
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| Database: | Engineering Source |
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| Abstract: | Luminescent cellulose-based fibers are promising materials for anti-counterfeiting applications because they can provide covert and spectrally distinguishable optical signatures compatible with paper- and textile-based authentication systems. In this study, Lyocell fibers modified with selected inorganic and organic luminescent compounds were subjected to accelerated xenon-lamp aging in order to evaluate their functional durability under simulated environmental exposure. The effects of aging on the mechanical properties and luminescent behavior of the fibers were investigated. The results showed that accelerated aging led to a reduction in tensile strength and elongation at break for all fiber variants, although the extent of these changes depended on the type of modifier. Spectroscopic analysis indicated that, despite changes in emission intensity, the characteristic luminescent responses of the modified fibers remained detectable after aging. These findings suggest that luminescent Lyocell fibers can retain their practical identification potential under the applied test conditions and may be considered promising candidates for use as covert security elements. The observed stability is attributed to the immobilization of luminophores within the cellulose matrix and the intrinsic photostability of the applied luminescent systems. At the same time, the study highlights the need for further investigations into the structural and photophysical stability of such systems under long-term environmental exposure. [ABSTRACT FROM AUTHOR] |
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| ISSN: | 19961944 |
| DOI: | 10.3390/ma19091767 |