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本征窄带蓝色磷光材料及其在3D打印自监测微流控芯片中的应用。

Intrinsic Narrowband Blue Phosphorescent Materials and Their Applications in 3D Printed Self-monitoring Microfluidic Chips.

作者信息

Kong Shuting, Wang Hailan, Liao Jimeng, Xiao Yuxin, Yu Tao, Huang Wei

机构信息

Frontiers Science Center for Flexible Electronics (FSCFE) and Xi'an Institute of Flexible Electronics (IFE), Northwestern Polytechnical University, 127 West Youyi Road, Xi'an, 710072, China.

Key Laboratory of Flexible Electronics of Zhejiang Province, Ningbo Institute of Northwestern Polytechnical University, 218 Qingyi Road, Ningbo, 31510, China.

出版信息

Adv Mater. 2024 Dec;36(49):e2412468. doi: 10.1002/adma.202412468. Epub 2024 Oct 18.

Abstract

Organic room-temperature phosphorescent (RTP) materials, especially with narrowband emission properties, exhibit great potential for applications in display and sensing, but have been seldom reported. Herein, a rare example of the intrinsic narrowband blue RTP material is fabricated and reported. A series of indolo[3,2,1-kl]phenothiazine derivatives, named Cphpz, 1O-Cphpz, and 2O-Cphpz, are designed and synthesized. Due to their relatively rigid structures, these three compounds showed deep blue narrowband emissions ranging from 396 to 434 nm with the full width at half maximum (FWHM) of 31, 26, and 31 nm, respectively. To the delight, compound 2O-Cphpz displayed intrinsic narrowband blue RTP at 448 nm with FWHM of 36 nm and a long-lived lifetime of 1.08 s in hydroxyethyl acrylate and acrylic acid matrix. Photophysical studies, single crystal analyses, and TD-DFT calculations are performed to elucidate further the relationships between molecular structures and the narrowband blue RTP properties. Meanwhile, because the narrowband blue RTP is highly sensitive to humidity, a visualizing droplet path optical microfluidic chip is efficiently fabricated through the digital light processing 3D printing.This work provides a rare example and a reliable strategy to realize narrowband blue RTP and further expand their applications in self-monitoring 3D printed structures.

摘要

有机室温磷光(RTP)材料,尤其是具有窄带发射特性的材料,在显示和传感应用中展现出巨大潜力,但鲜有报道。在此,制备并报道了一个本征窄带蓝色RTP材料的罕见实例。设计并合成了一系列吲哚并[3,2,1 - kl]吩噻嗪衍生物,命名为Cphpz、1O - Cphpz和2O - Cphpz。由于其相对刚性的结构,这三种化合物呈现出396至434 nm的深蓝色窄带发射,半高宽(FWHM)分别为31、26和31 nm。令人高兴的是,化合物2O - Cphpz在丙烯酸羟乙酯和丙烯酸基质中于448 nm处呈现本征窄带蓝色RTP,FWHM为36 nm,长寿命为1.08 s。进行了光物理研究、单晶分析和TD - DFT计算,以进一步阐明分子结构与窄带蓝色RTP特性之间的关系。同时,由于窄带蓝色RTP对湿度高度敏感,通过数字光处理3D打印高效制备了一种可视化液滴路径光学微流控芯片。这项工作提供了一个实现窄带蓝色RTP的罕见实例和可靠策略,并进一步扩展了它们在自监测3D打印结构中的应用。

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