College of Chemistry, Chemical Engineering and Materials Science, Zaozhuang University, Zaozhuang 277160, China.
Beijing National Laboratory for Molecular Sciences, CAS Key Laboratory of Engineering Plastics, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
Langmuir. 2024 Jul 2;40(26):13596-13602. doi: 10.1021/acs.langmuir.4c01141. Epub 2024 Jun 18.
Oxolinic acid (OXO), a classic environmental contaminant, has a terrible detrimental effect on human health. The exploration of efficient strategies to detect and detecting OXO has remarkable significance. Herein, we reported a novel terbium(III)-functionalized covalent organic framework (Bpy-DhBt-COF@Tb) by fixing Tb on the bipyridine-connecting COF (Bpy-DhBt-COF) as a turn-on fluorescent switch toward OXO for the first time. In this platform, Tb acts as the specific recognition units for OXO and the response signal, while Bpy-DhBt-COF acts as the safehaven for Tb. Once introducing OXO to Bpy-DhBt-COF@Tb, OXO can instead water molecules coordinate with Tb and sensitize Tb instantly, thereby producing a significant fluorescence signal. Profiting from the excellent porosity of Bpy-DhBt-COF@Tb, it can obtain optimal response toward OXO only within 10 s with an ultrasensitive detection limit of 12.5 nM. Furthermore, Bpy-DhBt-COF@Tb displayed outstanding selectivity toward OXO than other general quinolones. Based on these, a Tb-based COF was explored for the first time for the turn-on fluorescence detection of an OXO with rapid response, high sensitivity, and outstanding selectivity. In this work, we not only exhibit the attractive performance of Tb-functionalized COF to detect OXO but also propose a prospect strategy for creating other fluorescent sensors for multiple targets.
氧氟沙星(OXO)是一种经典的环境污染物,对人类健康有严重的危害。探索高效的检测策略对 OXO 的检测具有重要意义。在这里,我们首次报道了一种新型的铽(III)功能化共价有机框架(Bpy-DhBt-COF@Tb),通过将 Tb 固定在联吡啶连接的 COF(Bpy-DhBt-COF)上作为 OXO 的开荧光开关。在该平台中,Tb 作为 OXO 的特异性识别单元和响应信号,而 Bpy-DhBt-COF 作为 Tb 的安全港。一旦将 OXO 引入 Bpy-DhBt-COF@Tb,OXO 可以替代水分子与 Tb 配位并立即敏化 Tb,从而产生显著的荧光信号。得益于 Bpy-DhBt-COF@Tb 的优异多孔性,它可以在 10 秒内仅对 OXO 获得最佳响应,检测限低至 12.5 nM。此外,Bpy-DhBt-COF@Tb 对 OXO 的选择性明显优于其他一般喹诺酮类药物。基于这些,我们首次探索了基于 Tb 的 COF 用于快速响应、高灵敏度和出色选择性的 OXO 的开荧光检测。在这项工作中,我们不仅展示了 Tb 功能化 COF 对 OXO 检测的诱人性能,还提出了一种用于创建其他用于多种目标的荧光传感器的有前景的策略。