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基于无杂原子碳氢聚合物掺杂的可加工、可扩展、稳定的全彩色超长余辉系统。

A processable, scalable, and stable full-color ultralong afterglow system based on heteroatom-free hydrocarbon doped polymers.

机构信息

State Key Laboratory of Crystal Materials, Institute of Crystal Materials, Shandong University, Jinan 250100, P. R. China.

School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Key Lab of Electrical Insulation and Thermal Aging, Shanghai Jiao Tong University, Shanghai, 200240, China.

出版信息

Mater Horiz. 2023 Jan 3;10(1):197-208. doi: 10.1039/d2mh00998f.

Abstract

Although room-temperature phosphorescence (RTP) organic materials are a widely-studied topic especially popular in recent decades, long-lived RTP able to fulfil broad time-resolved application requirements reliably, are still rare. Polymeric materials doped with phosphorescent chromophores generally feature high productivity and diverse applications, compared with their crystalline counterparts. This study proves that pure polycyclic aromatic hydrocarbons (PAHs) may even outperform chromophores containing hetero- or heavy-atoms. Full-color (blue, green, orange and red) polymer-PAHs with lifetimes >5000 ms under ambient conditions are constructed, which provide impressive values compared to the widely reported polymer-based RTP materials in the respective color regions. The polymer-PAHs could be fabricated on a large-scale using various methods (solution, melt and polymerization), be processed into diverse forms (writing ink, fibers, films, and complex 3D architectures), and be used in a range of applications (anti-counterfeiting, information storage, and oxygen sensors). Plus their environmental (aqueous) stability makes the polymer-PAHs a promising option to expand the portfolio of organic RTPs.

摘要

室温磷光(RTP)有机材料虽然是一个备受关注的研究课题,尤其是在近几十年中备受关注,但能够可靠地满足广泛的时间分辨应用要求的长寿命 RTP 仍然很少见。与晶体相比,掺杂磷光发色团的聚合材料通常具有更高的生产率和更多样化的应用。本研究证明,纯多环芳烃(PAHs)甚至可能优于含有杂原子或重原子的发色团。构建了具有环境条件下寿命>5000ms 的全色(蓝色、绿色、橙色和红色)聚合物-PAH,与各自颜色区域中广泛报道的聚合物基 RTP 材料相比,这些值令人印象深刻。聚合物-PAH 可以使用各种方法(溶液、熔融和聚合)大规模制造,可以加工成各种形式(书写油墨、纤维、薄膜和复杂的 3D 结构),并应用于各种应用(防伪、信息存储和氧气传感器)。此外,其环境(水)稳定性使聚合物-PAH 成为扩展有机 RTP 组合的有前途的选择。

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