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Persistent room temperature phosphorescent materials with unique mechanical properties and robust optical properties have great potential in flexible electronics and photonics. However, developing such materials remains a formidable challenge. Here, we present highly stretchable, lightweight, and multicolored persistent luminescence elastomers, produced by incorporating ionic room temperature phosphorescent polymers and polyvinyl alcohol into a polydimethylsiloxane matrix. These prepared elastomers exhibit high optical transparency in daylight and emit bright persistent luminescence after the removal of 365 nm excitation. The homogeneous distribution of polymers within the matrix has been confirmed by confocal fluorescence microscopy, scanning electron microscopy, and atomic force microscopy. Mechanical property investigations revealed that the prepared persistent luminescence elastomers possess satisfactory stretchability. Impressively, these elastomers maintain robust optical properties even under extensive and repeated mechanical deformations, a characteristic previously unprecedented. These fantastic features make these persistent luminescence elastomers ideal candidates for potential applications in wearable devices, flexible displays, and anti-counterfeiting.
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http://dx.doi.org/10.1038/s41467-023-40193-1 | DOI Listing |
Commun Chem
September 2025
Dresden Integrated Center for Applied Physics and Photonic Materials (IAPP), Technische Universität Dresden, Dresden, Germany.
Purely organic materials showing efficient and persistent emission via room temperature phosphorescence (RTP) allow the design of minimalistic yet powerful technological solutions for sensing, bioimaging, information storage, and safety applications using the photonic design principle of digital luminescence. Although several promising materials exist, a deep understanding of the underlying structure-property relationship and, thus, development of rational design strategies are widely missing. Some of the best purely organic emitters follow the donor-acceptor-donor design motif.
View Article and Find Full Text PDFACS Nano
September 2025
State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, China.
Optical imaging offers high sensitivity and specificity for noninvasive cancer detection, but conventional techniques suffer from limited probe accumulation, tissue autofluorescence, and poor depth resolution. Afterglow luminescence overcomes autofluorescence by emitting persistent light after excitation, yet its utility in vivo remains hindered by weak tumor enrichment and two-dimensional readouts lacking spatial context. Here, we report luminescent-magnetic nanoparticles (LM-NPs) coencapsulating luminescent trianthracene (TA) molecules and iron oxide cores within the amphiphilic polymer pluronic-F127.
View Article and Find Full Text PDFAnal Chim Acta
November 2025
Institute of Materials Science, Vietnam Academy of Science and Technology, Hanoi, 10000, Viet Nam. Electronic address:
Background: Recent advancements in cancer therapeutics have catalyzed the development of noninvasive treatment modalities, including the utilization of fluorescent chemotherapeutic agents. These agents offer dual functionality, enabling targeted drug delivery, real-time tumor imaging, and personalized therapy monitoring. Such capabilities are instrumental in the progression toward more precise and effective cancer interventions.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
School of Chemical Engineering and Technology, Hebei University of Technology, XiPing Dao 5340, Beichen District, Tianjin 300401, P. R. China.
Perfluorooctanoic acid (PFOA) is a persistent organic pollutant with a global presence in water, air, and soil resources. Herein, a water-stable amine-functionalized lanthanide metal-organic framework () is utilized for ratiometric luminescence detection of PFOA. In the presence of PFOA, there is an increase in the emission intensity of the organic ligand, while the characteristic luminescence intensity of Eu ions decreases, accompanied by a distinct emission color change from red to blue.
View Article and Find Full Text PDFAdv Mater
September 2025
National and Local Joint Engineering Laboratory for Optical Conversion Materials and Technology of National Development and Reform Commission, Department of Materials Science, School of Materials and Energy, Lanzhou University, No. 222, South Tianshui Road, Lanzhou, Gansu, 730000, P. R. China.
Multimodal imaging provides comprehensive and precise tools that significantly increase the efficiency and accuracy in clinical decision-making. The integration of superior multimodal imaging capabilities with stimuli-responsive drug release functionalities within a single nanoplatform holds crucial promise for both scientific exploration and clinical translation but remains a formidable challenge in advancing precision medicine. The unique integration of near-infrared emission (λ = 760 nm), multiwavelength-rechargeable afterglow, photostimulated luminescence under 980 nm excitation, and Gd⁺-specific ferromagnetism is highlighted in NaGdTiO:Cr,Sn phosphor.
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