Tunable afterglow for mechanical self-monitoring 3D printing structures

Self-monitoring materials have promising applications in structural health monitoring. However, developing organic afterglow materials for self-monitoring is a highly intriguing yet challenging task. Herein, we design two organic molecules with a twisted donor-acceptor-acceptor’ configuration and ac...

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Veröffentlicht in:Nature communications 2024-02, Vol.15 (1), p.1596-1596, Article 1596
Hauptverfasser: Huang, Rongjuan, He, Yunfei, Wang, Juan, Zou, Jindou, Wang, Hailan, Sun, Haodong, Xiao, Yuxin, Zheng, Dexin, Ma, Jiani, Yu, Tao, Huang, Wei
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Sprache:eng
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Zusammenfassung:Self-monitoring materials have promising applications in structural health monitoring. However, developing organic afterglow materials for self-monitoring is a highly intriguing yet challenging task. Herein, we design two organic molecules with a twisted donor-acceptor-acceptor’ configuration and achieve dual-emissive afterglow with tunable lifetimes (86.1–287.7 ms) by doping into various matrices. Based on a photosensitive resin, a series of complex structures are prepared using 3D printing technology. They exhibit tunable afterglow lifetime and Young’s Modulus by manipulating the photocuring time and humidity level. With sufficient photocuring or in dry conditions, a long-lived bright green afterglow without apparent deformation under external loading is realized. We demonstrate that the mechanical properties of complex 3D printing structures can be well monitored by controlling the photocuring time and humidity, and quantitively manifested by afterglow lifetimes. This work casts opportunities for constructing flexible 3D printing devices that can achieve sensing and real-time mechanical detection. Organic afterglow materials have potential in self-monitoring applications but it is challenging to design materials with desired properties. Here, the authors report the development of a lifetime tunable organic afterglow system for use in mechanical self-monitoring 3D printed structures.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-024-45497-4