Abstract
Covalently embedding natural phosphors into a polymer matrix is a particularly appealing approach for producing sustainable room-temperature phosphorescent (RTP) materials. However, the fabrication of such RTP materials remains challenging. Additionally, naturally degradable RTP materials have been scarcely reported although they are crucial for sustainability. Here, we report methacrylated lignosulfonate as a phosphor, which is then covalently embedded within methacrylated gelatin by polymerization. The as-obtained Lig@Gel exhibits phosphorescence of ∼110 ms. Moreover, the Lig@Gel displays excellent biodegradability in a natural soil environment. Life cycle assessment indicates that 10 out of 14 environmental impact categories of our Lig@Gel are approximately 60%–100% lower than those of traditional luminescent materials. As a demonstration of applicability, Lig-RhB@Gel with red afterglow emission is prepared via loading Lig@Gel with rhodamine B (RhB) using an energy-transfer strategy. The as-prepared Lig@Gel and Lig-RhB@Gel could be employed as functional anti-counterfeiting coatings for fibers and paper.
Original language | English |
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Article number | 101811 |
Journal | Cell Reports Physical Science |
Volume | 5 |
Issue number | 2 |
Early online date | 1 Feb 2024 |
DOIs | |
Publication status | Published - 21 Feb 2024 |
Data Availability Statement
Data and code availabilityData supporting the findings of this paper are available as supplemental items, and any additional information required to reanalyze the data reported in this paper is available from the lead contact upon request.
Funding
This work was supported by the National Natural Science Foundation of China ( 31890774 and 31800494 ) and the Natural Science Funding of Heilong Jiang province for Excellent Young Scholar ( YQ2020C017 ). T.D.J. wishes to thank the University of Bath and the Open Research Fund of the School of Chemistry and Chemical Engineering, Henan Normal University ( 2020ZD01 ) for support.
Funders | Funder number |
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Henan Normal University | 2020ZD01 |
University of Bath | |
National Natural Science Foundation of China | 31800494, 31890774 |
Natural Science Foundation of Heilongjiang Province | YQ2020C017 |
Keywords
- aerogel
- afterglow yarn
- anti-counterfeiting
- covalent attachment
- hydrogel
- Life Cycle Assessment
- lignin
- natural polymers
- naturally degradable
- room-temperature phosphorescence
ASJC Scopus subject areas
- General Chemistry
- General Materials Science
- General Engineering
- General Energy
- General Physics and Astronomy