Poly(methyl methacrylate) Nanosphere-Based Photocrosslinked Hydrogels with Ultralong Phosphorescence Lifetimes for High-Precision 3D Printing.

Fuente: PubMed
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Autores principales: Zhao, Zhipeng, Bi, Yanyu, Wu, Yi, Wang, Zhengshuo, Liu, Huilong, Du, Cong, Yuan, Hua, Ding, Dan, Ou, Hanlin, Tan, Yeqiang
Formato: Artículo científico
Lenguaje:en
Publicado: Nano letters 2025
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author Zhao, Zhipeng
Bi, Yanyu
Wu, Yi
Wang, Zhengshuo
Liu, Huilong
Du, Cong
Yuan, Hua
Ding, Dan
Ou, Hanlin
Tan, Yeqiang
author_facet Zhao, Zhipeng
Bi, Yanyu
Wu, Yi
Wang, Zhengshuo
Liu, Huilong
Du, Cong
Yuan, Hua
Ding, Dan
Ou, Hanlin
Tan, Yeqiang
Zhao, Zhipeng
Bi, Yanyu
Wu, Yi
Wang, Zhengshuo
Liu, Huilong
Du, Cong
Yuan, Hua
Ding, Dan
Ou, Hanlin
Tan, Yeqiang
collection PubMed - marine biology
contents Poly(methyl methacrylate) Nanosphere-Based Photocrosslinked Hydrogels with Ultralong Phosphorescence Lifetimes for High-Precision 3D Printing. Zhao, Zhipeng Bi, Yanyu Wu, Yi Wang, Zhengshuo Liu, Huilong Du, Cong Yuan, Hua Ding, Dan Ou, Hanlin Tan, Yeqiang Hydrogel-based afterglow materials offer significant potential for broadening the application field of organic room-temperature phosphorescence (RTP) materials owing to their tissue-mimetic flexibility and superior biocompatibility. However, achieving a colorful and efficient RTP in a water-rich hydrogel environment remains challenging. Here, we present a general strategy to fabricate colorful and efficient RTP hydrogels by incorporating compact and hydrophobic nanospheres loaded with chromophores, synthesized via emulsion polymerization, into photocrosslinked hydrogels with oxygen barrier properties. The resultant hydrogel demonstrates a remarkably high water content of 94.6% and a maximum phosphorescence lifetime of up to 1697.0 ms, both significantly surpassing the relevant values of organic RTP hydrogels reported in prior studies. Furthermore, 3D RTP hydrogels with complex geometries and high precision are fabricated using digital light processing (DLP) 3D printing technology. This approach connects the RTP hydrogel and 3D printing fields for the first time, opening up substantial potential for advancing the applications of RTP materials.
format Artículo científico
id pubmed_40360454
institution PubMed
language en
publishDate 2025
publisher Nano letters
record_format pubmed
spellingShingle Poly(methyl methacrylate) Nanosphere-Based Photocrosslinked Hydrogels with Ultralong Phosphorescence Lifetimes for High-Precision 3D Printing.
Zhao, Zhipeng
Bi, Yanyu
Wu, Yi
Wang, Zhengshuo
Liu, Huilong
Du, Cong
Yuan, Hua
Ding, Dan
Ou, Hanlin
Tan, Yeqiang
Poly(methyl methacrylate) Nanosphere-Based Photocrosslinked Hydrogels with Ultralong Phosphorescence Lifetimes for High-Precision 3D Printing. Zhao, Zhipeng Bi, Yanyu Wu, Yi Wang, Zhengshuo Liu, Huilong Du, Cong Yuan, Hua Ding, Dan Ou, Hanlin Tan, Yeqiang Hydrogel-based afterglow materials offer significant potential for broadening the application field of organic room-temperature phosphorescence (RTP) materials owing to their tissue-mimetic flexibility and superior biocompatibility. However, achieving a colorful and efficient RTP in a water-rich hydrogel environment remains challenging. Here, we present a general strategy to fabricate colorful and efficient RTP hydrogels by incorporating compact and hydrophobic nanospheres loaded with chromophores, synthesized via emulsion polymerization, into photocrosslinked hydrogels with oxygen barrier properties. The resultant hydrogel demonstrates a remarkably high water content of 94.6% and a maximum phosphorescence lifetime of up to 1697.0 ms, both significantly surpassing the relevant values of organic RTP hydrogels reported in prior studies. Furthermore, 3D RTP hydrogels with complex geometries and high precision are fabricated using digital light processing (DLP) 3D printing technology. This approach connects the RTP hydrogel and 3D printing fields for the first time, opening up substantial potential for advancing the applications of RTP materials.
title Poly(methyl methacrylate) Nanosphere-Based Photocrosslinked Hydrogels with Ultralong Phosphorescence Lifetimes for High-Precision 3D Printing.
url https://pubmed.ncbi.nlm.nih.gov/40360454/