Li Sha, Ji Yuhan, Hong Haoshan, Wang Xiajuan, Xu Yan, Xue Ke, Liu Qingyun
College of Chemical and Biological Engineering, College of Energy Storage Technology, Shandong University of Science and Technology, Qingdao 266590, P R China.
Inorg Chem. 2025 Jul 14;64(27):13786-13795. doi: 10.1021/acs.inorgchem.5c01357. Epub 2025 Jun 30.
Conducting polymers (CPs) have emerged as a class of promising organic conducting materials and attracted extensive attention due to their intrinsic electrical conductivity and easy synthesis process. New design strategies to enhance the catalytic activity of nanozymes by CP functionalization would be highly desirable. Herein, we report the fabrication of CPs-functionalized cerium-based nanozymes and study their application in the intelligent colorimetric sensing of Cr (VI). The CPs are innovatively modified on the copper-doped cerium oxysulfate cluster (CuCe) by surface polymerization, which is conducive to the directed growth of CPs and the effective contact with CuCe. As anticipated, the polythiophene-functionalized CuCe (PTh-CuCe) exhibits excellent oxidase-like and laccase-like catalytic activities owing to the well-matched energy band structure and high photoinduced hole-electron separation efficiency. Relying on the stable chelation ability between 8-HQ and Cr (VI), PTh-CuCe is successfully used to fabricate an 8-HQ-mediated intelligent platform for Cr (VI) sensing, with the limit of detection as low as 0.026 μM. This study provides an effective design strategy to develop nanozymes with excellent catalytic performance. Our newly developed nanozyme-based sensing platform can serve as a powerful tool for the intelligent sensing of Cr (VI) in water samples, holding great potential for environment monitoring.
导电聚合物(CPs)已成为一类有前景的有机导电材料,因其固有的导电性和简便的合成过程而受到广泛关注。通过CP功能化来增强纳米酶催化活性的新设计策略将非常受欢迎。在此,我们报道了CPs功能化铈基纳米酶的制备,并研究了它们在Cr(VI)智能比色传感中的应用。通过表面聚合将CPs创新性地修饰在掺铜硫酸铈簇(CuCe)上,这有利于CPs的定向生长以及与CuCe的有效接触。正如预期的那样,聚噻吩功能化的CuCe(PTh-CuCe)由于能带结构匹配良好和光生空穴-电子分离效率高,表现出优异的类氧化酶和类漆酶催化活性。依靠8-羟基喹啉(8-HQ)与Cr(VI)之间稳定的螯合能力,PTh-CuCe成功用于构建一个8-HQ介导的Cr(VI)传感智能平台,检测限低至0.026 μM。本研究提供了一种有效的设计策略来开发具有优异催化性能的纳米酶。我们新开发的基于纳米酶的传感平台可作为水样中Cr(VI)智能传感的有力工具,在环境监测方面具有巨大潜力。