Zhou Yifan, Zhang Shuhao, Liu Hongde, Yi Yinhui, Zhu Gangbing
School of the Environment and Safety Engineering, and Collaborative Innovation Center of Technology and Material of Water Treatment, Jiangsu University, Zhenjiang, 212013, PR China.
State Key Laboratory of Digital Medical Engineering, School of Biological Science and Medical Engineering, Southeast University, Nanjing, 210096, PR China.
Talanta. 2025 Apr 1;285:127347. doi: 10.1016/j.talanta.2024.127347. Epub 2024 Dec 6.
The heavy metal ions (HMI) and π-electronical pollutants are two main types of environmental water contaminants, thus designing a universal sensor for their detection is considerable important. Meanwhile, graphdiyne (GDY) as a star material exhibits many unique advantages, especially superior adsorption and self-reducing property to HMI as well as great affinity to π-electron targets. Herein, by low-cost utilizing carbon nanotubes (CNTs) as the template dedicated to improve the conductivity and dispersibility of GDY, a multifunctional nanohybrid GDY/CNTs was prepared and then revealed successfully as a universal electrochemical sensing material for the HMI and π-electronical pollutants by adopting three models: (a) based on the in-situ adsorption and self-reduction capabilities of GDY towards HMI, an innovative electroreduction-free stripping voltammetry (FSV) sensing strategy was proposed for HMI detection via adopting Cu as a representative, which can effectively avoid the electroreduction process compared with the common anodic stripping voltammetry method; (b) by selecting nonylphenol (NP) and tetracycline (TC) as two representative targets, the sensing performances of GDY/CNTs for the π-electronical pollutants were also confirmed. After optimizing the related experimental parameters, the as-prepared GDY/CNTs exhibits superior analytical performances (the obtained detection limits for Cu, NP and TC are respectively 1.6 nM, 6.67 nM and 1.67 nM coupled with the linearities of 0.005-10.0 μM, 0.02-25.0 μM and 0.005-6.0 μM) owing to the synergistic advantages of GDY and CNTs. This work revealed the as-prepared GDY/CNTs nanohybrids can be utilized as a robust universal sensing material for HMI and pollutants consisting of π-electrons, and especially the proposed FSV sensing strategy is very promising, exhibiting great potential applications.
重金属离子(HMI)和π电子污染物是环境水体污染物的两种主要类型,因此设计一种通用的传感器来检测它们非常重要。同时,石墨炔(GDY)作为一种明星材料具有许多独特的优势,特别是对HMI具有优异的吸附和自还原性能以及对π电子目标具有很强的亲和力。在此,通过低成本利用碳纳米管(CNTs)作为模板来提高GDY的导电性和分散性,制备了一种多功能纳米杂化材料GDY/CNTs,然后通过采用三种模型成功地将其揭示为用于HMI和π电子污染物的通用电化学传感材料:(a)基于GDY对HMI的原位吸附和自还原能力,提出了一种创新的无电还原溶出伏安法(FSV)传感策略用于以铜为代表的HMI检测,与普通阳极溶出伏安法相比,该方法可有效避免电还原过程;(b)通过选择壬基酚(NP)和四环素(TC)作为两个代表性目标,也证实了GDY/CNTs对π电子污染物的传感性能。优化相关实验参数后,由于GDY和CNTs的协同优势,所制备的GDY/CNTs表现出优异的分析性能(对铜、NP和TC获得的检测限分别为1.6 nM、6.67 nM和1.67 nM,线性范围分别为0.005 - 10.0 μM、0.02 - 25.0 μM和0.005 - 6.0 μM)。这项工作表明,所制备的GDY/CNTs纳米杂化物可作为一种强大的通用传感材料用于HMI和由π电子组成的污染物,特别是所提出的FSV传感策略非常有前景,具有巨大的潜在应用价值。