Department of Analytical Chemistry, College of Chemistry, Jilin University, Changchun 130012, China.
Anal Chem. 2022 Aug 9;94(31):11016-11022. doi: 10.1021/acs.analchem.2c01480. Epub 2022 Jul 28.
Herein, based on electronic metal-support interaction (EMSI), a gold single atom confined MXene (Au/MXene) heterostructure was developed as the highly efficient electrochemiluminescence (ECL) functional material, which greatly improved the electrochemical properties and broadened the sensing application of MXenes. Gold single atoms were confined into the vacancy defects of TiCT MXene, which could effectively avoid the masking of catalytic active sites. Meanwhile, electron transport could be accelerated with the assistance of titanium dioxide on the MXene nanosheets. Therefore, the Au/MXene heterostructure had high catalytic activity and electrical activity to promote hydrogen peroxide to generate free radicals, which achieved high-efficiency ECL. Eventually, the Au/MXene heterostructure was used to construct a Faraday cage-type ECL sensor with fluid nanoislands to detect miRNA-187 in triple-negative breast cancer tumor tissues.
在此,基于电子金属支撑相互作用(EMSI),开发了一种金单原子限域 MXene(Au/MXene)杂化结构作为高效电致化学发光(ECL)功能材料,极大地改善了 MXenes 的电化学性能并拓宽了其传感应用。金单原子被限域在 TiCT MXene 的空位缺陷中,这可以有效地避免催化活性位点的掩蔽。同时,在 MXene 纳米片上的二氧化钛的协助下,可以加速电子传输。因此,Au/MXene 杂化结构具有高催化活性和电子活性,可促进过氧化氢生成自由基,从而实现高效 ECL。最终,Au/MXene 杂化结构被用于构建具有流体纳米岛的法拉第笼型 ECL 传感器,以检测三阴性乳腺癌肿瘤组织中的 miRNA-187。