Zhu Xiaochun, Su Huimei, Song Yuxi, Dai Yufan, Chai Yaqin, Yuan Ruo, Zhou Ying
Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, P. R. China.
College of Food Science, Southwest University, Chongqing 400715, P. R. China.
Anal Chem. 2024 Aug 20;96(33):13616-13624. doi: 10.1021/acs.analchem.4c02427. Epub 2024 Aug 8.
Herein, the gold nanoclusters/CaFeO nanospheres (Au NCs/CaFeO) heterostructure as a novel electrochemiluminescence (ECL) emitter was developed. Excitingly, Au NCs/CaFeO displayed highly efficient and greatly stable ECL based on the newly defined electron-accelerator p-type semiconductor CaFeO NS-induced fast electron transfer; it solved one key obstacle of metal NC-based ECL emitters: sluggish through-covalent bond electron transport kinetics-caused inferior ECL performance. Specifically, on account of the energy level matching between emitter Au NCs and electron-accelerator CaFeO NSs, the valence band (VB) of the electron-accelerator could provide abundant holes for rapidly transporting the electrogenerated electron from the highest occupied molecular orbital (HOMO) of Au NCs to the electrode, generating massive excited species of Au NCs for strong ECL emission. Notably, Au NCs/CaFeO emerged 5.4-fold higher ECL efficiency with 3.5-fold higher electrochemical oxidation current in comparison with pure Au NCs, exhibiting great prospects in extensive lighting installations, ultrasensitive biosensing, and high-resolution ECL imagery. As applications, an ECL bioassay platform was constructed with Au NCs/CaFeO as an emitter and U-like structure-fueled catalytic hairpin assembly (U-CHA) as a signal amplifier for fast and trace analysis of aflatoxin B1 (AFB1) with the detection limit (LOD) down to 2.45 fg/mL, which was 3 orders of magnitude higher than that of the previous ECL biosensors with much better stability. This study developed an entirely new avenue for enlarging the ECL performance of metal NCs, and it is a very attractive orientation for directing the reasonable design of prominent metal NC-based ECL emitters and broadening the practical application of metal NCs.
在此,开发了一种新型的电化学发光(ECL)发射体——金纳米团簇/钙铁氧体纳米球(Au NCs/CaFeO)异质结构。令人兴奋的是,基于新定义的电子加速器p型半导体CaFeO纳米球诱导的快速电子转移,Au NCs/CaFeO表现出高效且极其稳定的ECL;它解决了基于金属纳米团簇的ECL发射体的一个关键障碍:通过共价键的电子传输动力学缓慢导致的ECL性能不佳。具体而言,由于发射体Au NCs与电子加速器CaFeO纳米球之间的能级匹配,电子加速器的价带(VB)可以提供丰富的空穴,用于将电生电子从Au NCs的最高占据分子轨道(HOMO)快速传输到电极,从而产生大量的Au NCs激发态物种以实现强烈的ECL发射。值得注意的是,与纯Au NCs相比,Au NCs/CaFeO的ECL效率提高了5.4倍,电化学氧化电流提高了3.5倍,在广泛的照明装置、超灵敏生物传感和高分辨率ECL成像方面展现出巨大的前景。作为应用,构建了一个以Au NCs/CaFeO为发射体、以U型结构驱动的催化发夹组装(U-CHA)为信号放大器的ECL生物分析平台,用于黄曲霉毒素B1(AFB1)的快速痕量分析,检测限(LOD)低至2.45 fg/mL,比之前的ECL生物传感器高3个数量级,且稳定性更好。本研究为提高金属纳米团簇的ECL性能开辟了一条全新的途径,对于指导设计卓越的基于金属纳米团簇的ECL发射体以及拓宽金属纳米团簇的实际应用而言,是一个极具吸引力的方向。