State Key Laboratory of Biocatalysis and Enzyme Engineering, School of Life Sciences, Hubei University, Wuhan, 430062, China.
Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Ministry-of-Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules, College of Chemistry and Chemical Engineering, Hubei University, Wuhan, 430062, China.
Mikrochim Acta. 2021 Nov 2;188(11):401. doi: 10.1007/s00604-021-05064-w.
The TiC MXene quantum dots (TiC MQDs) derived from TiC MXene have received much attention because of their remarkable advantages in biosensing. Nevertheless, the functionalization of TiC MQDs to improve their properties is just in its infant stage. Herein, we firstly synthesized nitrogen and boron co-doped TiC MQDs (N, B-TiC MQDs) with good water solubility, strong stability, and high optical characteristics. The N, B-TiC MQDs exhibit excitation wavelength-dependent blue photoluminescence with optimal excitation/emission peaks at 335/439 nm. Nowadays, the development of fast and real-time detection of tetracycline (TC) in animal derived food is very essential. In this work, a novel point-of-care testing (POCT) platform was established based on ratiometric fluorescence method using N, B-TiC MQDs coupled with Eu. Upon addition of TC in the Eu/N, B-MQDs system, blue fluorescence emission of N, B-TiC MQDs was quenched and red fluorescence emission of Eu was enhanced gradually, which was ascribed to the synergistic inner filter effect and antenna effect. Moreover, we prepared test papers with N, B-TiC MQDs and Eu for TC detection based on the change of fluorescence color, which could be recognized by color recognizer app installed in the smartphone. Therefore, great promise for POCT of TC is given with the merits of simplicity and visible detection possibility. The proposed method demonstrated a low detection limit of 20 nM. Application of the platform for TC quantification in milk samples opened a novel means for the potential use of N, B-TiC MQDs in food safety.
TiC MXene 量子点(TiC MQDs)衍生自 TiC MXene,由于其在生物传感方面的显著优势而备受关注。然而,TiC MQDs 的功能化以改善其性能仍处于起步阶段。在此,我们首次合成了具有良好水溶性、强稳定性和高光特性的氮硼共掺杂 TiC MQDs(N,B-TiC MQDs)。N,B-TiC MQDs 表现出激发波长依赖性的蓝色光致发光,最佳激发/发射峰位于 335/439nm。如今,快速实时检测动物源性食品中四环素(TC)的发展非常重要。在这项工作中,建立了一种基于比率荧光法的新型即时检测(POCT)平台,该平台使用 N,B-TiC MQDs 与 Eu 结合。在 TC 加入 Eu/N,B-MQDs 体系中,N,B-TiC MQDs 的蓝色荧光发射被猝灭,Eu 的红色荧光发射逐渐增强,这归因于协同的内滤效应和天线效应。此外,我们基于荧光颜色的变化,用 N,B-TiC MQDs 和 Eu 制备了用于 TC 检测的试纸,可通过智能手机中安装的颜色识别器应用程序识别。因此,该方法具有简单和可见检测的可能性,为 TC 的 POCT 提供了广阔的前景。该方法的检测限低至 20nM。该平台在牛奶样品中 TC 定量的应用为 N,B-TiC MQDs 在食品安全中的潜在应用开辟了新途径。