Xu Lihui, Mei Xuena, Zhou Shuang, Zhang Jing, Zhu Peihua, Yu Jinghua, Zhang Yan
School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, China.
Anal Chem. 2025 Oct 7;97(39):21508-21517. doi: 10.1021/acs.analchem.5c03676. Epub 2025 Sep 22.
The inferior electron transfer efficiency and energy dissipation during mass transport processes constitute the fundamental limitations responsible for diminished electrochemiluminescence (ECL) efficiency. To address this critical issue, a synergistic approach combining nanoconfinement effects with co-reactant acceleration strategies was implemented, significantly enhancing ECL performance. Initially, copper sulfide nanoparticles (CuS NPs) were encapsulated within the covalent organic framework (COF) through the embedding method, followed by the in situ synthesis of gold nanoclusters (AuNCs) within the COF pores, ultimately yielding the high-performance ECL emitter AuNCs@CuS@COF. CuS NPs serve as an efficient co-reactant accelerator, catalyzing peroxydisulfate to generate abundant active free radicals, while the COF's nanoconfinement effect enhances the interaction efficiency between these radicals and the luminescent AuNCs, significantly amplifying ECL emission. Furthermore, a sensitive "off-on" ECL biosensor was constructed utilizing Cu-dependent DNAzyme. In the presence of zearalenone (ZEN), the DNAzyme walker, activated by Cu, cleaves the quencher-labeled substrate strands, restoring the ECL signal for accurate ZEN detection. Under optimized conditions, this ECL platform was demonstrated with a wide linear range (10 to 10 ng/mL), an ultralow detection limit (0.052 pg/mL), excellent stability, remarkable specificity, and robust practicality, establishing a novel approach for mycotoxin detection in food safety monitoring.
在质量传输过程中较低的电子转移效率和能量耗散构成了导致电化学发光(ECL)效率降低的基本限制因素。为了解决这一关键问题,实施了一种将纳米限域效应与共反应物加速策略相结合的协同方法,显著提高了ECL性能。首先,通过嵌入法将硫化铜纳米颗粒(CuS NPs)封装在共价有机框架(COF)内,随后在COF孔内原位合成金纳米团簇(AuNCs),最终得到高性能的ECL发光体AuNCs@CuS@COF。CuS NPs作为一种高效的共反应物加速器,催化过二硫酸盐生成大量活性自由基,而COF的纳米限域效应提高了这些自由基与发光AuNCs之间的相互作用效率,显著增强了ECL发射。此外,利用铜依赖性DNAzyme构建了一种灵敏的“关-开”ECL生物传感器。在玉米赤霉烯酮(ZEN)存在的情况下,由铜激活的DNAzyme步行器切割淬灭剂标记的底物链,恢复ECL信号以准确检测ZEN。在优化条件下,该ECL平台表现出宽线性范围(10至10 ng/mL)、超低检测限(0.052 pg/mL)、出色的稳定性、显著的特异性和强大的实用性,为食品安全监测中的霉菌毒素检测建立了一种新方法。