Wang Xue, Zhao Zixuan, An Long, Wang Tianxiang, Yang Xiaojing, Shan Jiajia
School of Chemical Engineering, Ocean and Life Sciences, Dalian University of Technology, Panjin, 124221, China.
Mikrochim Acta. 2024 Nov 29;191(12):772. doi: 10.1007/s00604-024-06841-z.
An unlabeled electrochemical sensing strategy based on electroactive copper-centered metal-organic framework (Cu-MOF) film coupled with multiwalled carbon nanotubes (MWCNTs) was proposed for the rapid assessment of nanoplastic concentration. The sensing interface was fabricated via the electro-deposition of Cu-MOF on the pre-modified MWCNTs using the cathodic reduction method. The exposed copper active sites in Cu-MOF showed excellent electrochemical activity, which was further enhanced due to rapid electron transfer induced by highly conductive MWCNTs. Through the adsorption functionality of Cu-MOF film towards polystyrene (PS) nanoplastics, the rapid recognition for nanoplastics in aqueous solution was achieved, thereby causing the inhibition of the current response. The results showed a robust dependence of the inhibition rate on the PS mass concentration. The proposed detection method was used for the quantitative determination of PS nanoplastics with the sizes of 100 nm, 500 nm, and 1 μm. The applicability of this electrochemical sensing platform was successfully validated in real-world water sample analysis.
提出了一种基于电活性铜基金属有机框架(Cu-MOF)薄膜与多壁碳纳米管(MWCNT)耦合的无标记电化学传感策略,用于快速评估纳米塑料浓度。采用阴极还原法,通过在预修饰的MWCNT上电沉积Cu-MOF制备传感界面。Cu-MOF中暴露的铜活性位点表现出优异的电化学活性,由于高导电性MWCNT诱导的快速电子转移,其电化学活性进一步增强。通过Cu-MOF薄膜对聚苯乙烯(PS)纳米塑料的吸附功能,实现了对水溶液中纳米塑料的快速识别,从而导致电流响应受到抑制。结果表明,抑制率对PS质量浓度有很强的依赖性。所提出的检测方法用于定量测定尺寸为100 nm、500 nm和1μm的PS纳米塑料。该电化学传感平台的适用性在实际水样分析中得到了成功验证。