Key Lab of Mesoscopic Chemistry of MOE and Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
Analyst. 2019 Dec 16;145(1):233-239. doi: 10.1039/c9an01992h.
Three-component conjugated polymers of a strong donor-acceptor (D-A) type could be synthesized by Pd-catalyzed Suzuki coupling polymerization reaction of 1,2-bis(4-bromophenyl)-1,2-diphenylethene (M-1) with 9-octyl-3,6-bis(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-9H-carbazole (M-2) and 4,6-bis((E)-4-bromostyryl)-2,2-difluoro-5-phenyl-2H-1l3,3,2l4-dioxaborinine (M-3). Among them, P-1 and P-2 with high TPE ratios at 0.95 and 0.9 showed obvious aggregation-induced emission (AIE) behavior; in contrast P-3 with a low TPE ratio at 0.8 showed an aggregation-caused quenching (ACQ) phenomenon. In particular, the three resulting polymer dots (P-1 to P-3 Pdots) exhibited a 200 mV lower electrochemiluminescence (ECL) potential due to their strong D-A electronic structure. Most importantly, the ECL signals of Pdots could be enhanced as high as 3 times by increasing their AIE-active TPE moiety ratios from 0.8 (P-3) to 0.95 (P-1) via the band gap emission process. Herein, P-1 Pdots with the strongest ECL signal were successfully used as ECL biosensors for the detection of catechol, epinephrine and dopamine with detection limits of 1, 7 and 3 nM, respectively. This work provides a new strategy for developing highly sensitive ECL biosensors by the smart structure design of the AIE-active Pdots.
三组分共轭聚合物的强给体-受体(D-A)型可以通过 Pd 催化的 Suzuki 偶联聚合反应合成的 1,2-双(4-溴苯基)-1,2-二苯基乙烯 (M-1)与 9-辛基-3,6-双(4,4,5,5-四甲基-1,3,2-二氧杂硼烷-2-基)-9H-咔唑 (M-2)和 4,6-双((E)-4-溴代亚乙烯基)-2,2-二氟-5-苯基-2H-1l3,3,2l4-二氧杂硼嗪啉 (M-3)。其中,P-1 和 P-2 具有较高的 TPE 比(0.95 和 0.9),表现出明显的聚集诱导发射(AIE)行为;相比之下,具有较低 TPE 比(0.8)的 P-3 表现出聚集诱导猝灭(ACQ)现象。特别是,由于其强的 D-A 电子结构,三种得到的聚合物点(P-1 到 P-3Pdots)表现出 200 mV 更低的电化学发光(ECL)电位。最重要的是,通过增加其 AIE 活性 TPE 部分的比例,从 0.8(P-3)增加到 0.95(P-1),ECL 信号可以增强高达 3 倍,通过能带隙发射过程。在此,具有最强 ECL 信号的 P-1Pdots 成功地用作 ECL 生物传感器,用于检测儿茶酚、肾上腺素和多巴胺,检测限分别为 1、7 和 3 nM。这项工作为通过智能结构设计开发高灵敏度的 ECL 生物传感器提供了一种新策略。