Key Laboratory of Luminescent and Real-Time Analytical Chemistry (Southwest University), Ministry of Education, College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China.
Anal Chem. 2021 Jul 27;93(29):10212-10219. doi: 10.1021/acs.analchem.1c01571. Epub 2021 Jul 12.
Herein, a novel Au nanoclusters/CuO (Au NCs/CuO) heterostructure exhibited exceptionally strong electrochemiluminescence (ECL) emission, in which the p-type semiconductor CuO was defined as the electrosensitizer to provide the electrogenerated holes for rapidly transferring the electrogenerated hot electrons of Au NCs. Thus, the fast charge transfer of Au NCs/CuO was achieved by the electrosensitizer compared to the sluggish one intramolecular covalent bond charge transfer of traditional Au NCs, resulting in a greatly higher ECL efficiency (63.8%) than that of pure Au NCs (2.7%) the standard [Ru(bpy)]. It solved one main challenge of electrochemiluminophore-based metal NCs: high efficiency with energic charge-transport kinetics. As a proof of concept, Au NCs/CuO was successfully employed in an ultrasensitive ECL biosensing platform for determining the biological antioxidant glutathione with a limit of detection (LOD) as low as 6.3 pM. The heterostructure as an ECL emitter is a very promising start for guiding the rational design of efficient electrochemiluminophores in intense light-emitting devices and high-definition ECL imaging.
在此,我们展示了一种新型的 Au 纳米团簇/CuO(Au NCs/CuO)异质结构,其展现出了异常强的电致化学发光(ECL)发射。其中,p 型半导体 CuO 被定义为电生空穴的敏化剂,以快速转移 Au NCs 的电生热电子。因此,与传统 Au NCs 的缓慢分子内共价键电荷转移相比,Au NCs/CuO 的快速电荷转移可以通过敏化剂来实现,从而导致 ECL 效率(63.8%)大大高于纯 Au NCs(2.7%)和标准 [Ru(bpy)]。它解决了基于电致发光体的金属 NCs 的一个主要挑战:高效与高能电荷传输动力学。作为概念验证,Au NCs/CuO 被成功地应用于超灵敏 ECL 生物传感平台,用于测定生物抗氧化剂谷胱甘肽,其检测限(LOD)低至 6.3 pM。该异质结构作为 ECL 发射器,为在高强度发光器件和高清晰度 ECL 成像中指导高效电致发光体的合理设计提供了一个非常有前景的起点。