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Author Spotlight: Advancing Bioimaging and Therapy with Functional Nanomaterials
Published on: September 13, 2024
Lignin-Based Temperature Phosphorescent Material Composites: Long Afterglow & Water Stability
Xintong Li1, Yanhua Zhang1, Xingjiang Wu1
1National-Local Joint Engineering Laboratory for Energy Conservation in Chemical Process Integration and Resources Utilization, School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin 300401, China.
None:
Room-temperature phosphorescence (RTP) materials are severely limited by emission quenching in aqueous environments, which restricts their practical utility. To address this, we present a hierarchical rigidification and encapsulation strategy to fabricate ultralong and water-resistant RTP materials from lignin-derived carbon dots (CDs). At the molecular level, lignin was selectively depolymerized using a computationally guided deep eutectic solvent (DES) to yield CDs with tailored surface chemistry. At the nanoscale, the heteroatom-doped CDs were immobilized within a rigid polyacrylamide (PAM) network, which restricted molecular motion and produced a phosphorescence lifetime of 451 ms. At the macroscopic level, a continuous crystalline isophthalic acid (IPA) layer was introduced as a protective barrier, effectively shielding the phosphors from quenchers such as water and oxygen. This multilevel design suppresses nonradiative decay and extends the phosphorescence lifetime to 729 ms. It also enables a visible afterglow lasting more than 6 s in aqueous solution, which, to our knowledge, has not been reported previously for lignin-based RTP systems. The resulting composite exhibits excellent stability across various solvents and demonstrates considerable potential for advanced anticounterfeiting applications.
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