Lu Feng, Xu Xinhuan, Zhu Xingdong, Shen Linxin, Wan Weizheng, Hu Min
School of Medicine, Xi'an Jiaotong University, Xi'an 710061, PR China.
School of Chemistry, Xi'an Jiaotong University, Xi'an 710049, PR China.
Spectrochim Acta A Mol Biomol Spectrosc. 2024 Jan 5;304:123404. doi: 10.1016/j.saa.2023.123404. Epub 2023 Sep 13.
Room temperature phosphorescent (RTP) Carbon Dots have been capturing increasing attention in recent years, while building a general method to adjust the emission color of RTP carbon dots is still a big challenge. Herein we report a simple method that combine the carbon nanodots and dyes (R6G and DCF) in SiO nanosphere to get a series of multicolor RTP nanodots (CD@SiO@dye) with long lifetime in aqueous solution. Leverage on chitosan quaternary ammonium as matrix and diethylenetriamine as N-doping resource to form a cross-linked skeleton as a luminescent center (namely CD), and a rigid network is formed by silica encapsulation (CD@SiO) to restrict the non-radiative transition process to generate the phosphorescence. The CD-based composites, with 1.10 s green (503 nm) phosphorescence emission, serve as activator to stimulate the corresponding luminescence of organic dyes. Then, based on Förster resonance energy transfer (FRET) process from CDs (as donor) to organic dyes (as acceptor) under UV excitation, the CD@SiO@R6G emit ultra-long lifetime (1.13 s) orange-yellow (570 nm) afterglow, and CD@SiO@DCF emit ultra-long lifetime (1.20 s) yellow-green afterglow (530 nm). Furthermore, it also achieves RTP colors control when the ratio of CDs and the dyes changes, the ratio of green emission and dye's emission activated by CDs will gradually change as well. These kinds of materials keep the inherent advantages of low toxicity and luminous stability, and achieve adjustable RTP color in aqueous solution. Our research provides a strategy to synthesize water-soluble long-life RTP CDs with adjustable color and lifetime.
近年来,室温磷光(RTP)碳点越来越受到关注,然而构建一种通用的方法来调节RTP碳点的发射颜色仍然是一个巨大的挑战。在此,我们报道了一种简单的方法,即将碳纳米点与染料(R6G和DCF)结合在SiO纳米球中,以在水溶液中获得一系列具有长寿命的多色RTP纳米点(CD@SiO@染料)。利用壳聚糖季铵盐作为基质,二乙烯三胺作为N掺杂源,形成交联骨架作为发光中心(即CD),通过二氧化硅封装形成刚性网络(CD@SiO)来限制非辐射跃迁过程以产生磷光。基于CD的复合材料具有1.10秒的绿色(503nm)磷光发射,作为激活剂来激发有机染料的相应发光。然后,基于紫外激发下从CDs(作为供体)到有机染料(作为受体)的Förster共振能量转移(FRET)过程,CD@SiO@R6G发射超长寿命(1.13秒)的橙黄色(570nm)余辉,CD@SiO@DCF发射超长寿命(1.20秒)的黄绿色余辉(530nm)。此外,当CDs与染料的比例变化时,它还能实现RTP颜色控制,由CDs激活的绿色发射与染料发射的比例也会逐渐变化。这类材料保留了低毒性和发光稳定性的固有优点,并在水溶液中实现了可调节的RTP颜色。我们的研究提供了一种合成具有可调节颜色和寿命的水溶性长寿命RTP CDs的策略。