Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, School of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, PR China.
College of Pharmacy, Chongqing Medical University, Chongqing, 400016, PR China.
Anal Chim Acta. 2023 Mar 15;1246:340866. doi: 10.1016/j.aca.2023.340866. Epub 2023 Jan 20.
Ratiometric fluorescence sensors gain stronger anti-interference ability via self-calibration. Nevertheless, ratiometric analysis of phosphate (Pi) still faces problems such as complicated construction process of dual emission probes and possible interferences from outputting mono-category fluorescent signal. Herein, we propose a "kill two birds with one stone" strategy to address these challenges, by simply introducing a single-component probe, porphyrin paddlewheel framework-3 (PPF-3) nanosheets without modification, encapsulation or complex, to integrate fluorescence (FL)-second-order scattering (SOS) dual-signal for ratiometric detection of Pi. PPF-3 nanosheets are constructed by coordination of Co with 5,10,15,20-tetrakis(4-carboxyl-phenyl)-porphyrin (TCPP) ligands, displaying weak FL and strong SOS, two different and independent signals. In the response system to Pi, Co and TCPP serve as the recognition element and signal unit, respectively. After interacting with Pi, the high affinity for Co makes Pi snatch Co from the PPF-3 nanosheets, causing their structure disassembly (SOS decrease) and TCPP release (FL increase). Finally, the FL-SOS ratiometric platform is successfully employed to access Pi in real water samples. Synchronous collection of FL and SOS from the single-component probe provides a simpler and more efficient way on ratiometric sensor design as well as a new useful technique for monitoring target-induced aggregation and disaggregation behavior.
比率荧光传感器通过自校准获得更强的抗干扰能力。然而,磷酸盐(Pi)的比率分析仍然存在一些问题,例如双发射探针的构建过程复杂,以及可能输出单类别荧光信号的干扰。在此,我们提出了一种“一石二鸟”的策略来解决这些挑战,只需引入单个组件探针卟啉桨轮框架-3(PPF-3)纳米片,无需修饰、封装或复杂,即可集成荧光(FL)-二次散射(SOS)双信号,用于 Pi 的比率检测。PPF-3 纳米片由 Co 与 5,10,15,20-四(4-羧基苯基)卟啉(TCPP)配体配位而成,表现出较弱的 FL 和较强的 SOS,两种不同且独立的信号。在响应 Pi 的体系中,Co 和 TCPP 分别作为识别元件和信号单元。与 Pi 相互作用后,Co 的高亲和力使 Pi 从 PPF-3 纳米片中抢夺 Co,导致其结构解体(SOS 减少)和 TCPP 释放(FL 增加)。最后,成功地将 FL-SOS 比率平台用于实际水样中的 Pi 检测。从单个组件探针中同步采集 FL 和 SOS,为比率传感器设计提供了一种更简单、更有效的方法,以及监测目标诱导聚集和解聚集行为的新有用技术。