Department of Analytical Chemistry and Pollutants, Faculty of Chemistry and Petroleum Sciences, Shahid Beheshti University, Tehran, Iran.
Department of Analytical Chemistry and Pollutants, Faculty of Chemistry and Petroleum Sciences, Shahid Beheshti University, Tehran, Iran.
Food Chem. 2024 Jul 15;446:138890. doi: 10.1016/j.foodchem.2024.138890. Epub 2024 Feb 29.
Today, the wide use of triazole fungicides due to environmental damage and its side effects has raised global concern. Hence, in this research, poly-vinyl alcohol/polyacrylic-acid/CoFe-PBA@GO electrospun nanofiber was synthesized and applied as effective, degradable, and novel adsorbent at pipette-tip microextraction (PT-μSPE) method for the rapid and concurrent extraction of five of triazole fungicides in fruit and vegetable samples prior to quantitative analysis by high-performance liquid chromatography-ultraviolet. The incorporation of CoFe-PBA@GO with superporous structure and abundant functional groups in a polymer medium improves the extraction efficiency of nanofibers due to hydrogen bonding and π-π interactions formed between analytes and synthesized nano-adsorbent. Various important elements that affect the extraction yield of the target analytes were optimized utilizing a time-variable approach. Under the optimum conditions, dynamic range was attained in the range of 0.3-900.0 ng/mL with correlation coefficients ≥ 0.999. The identification limit of the PT-μSPE-HPLC-UV method ranged from 0.1 to 0.3 ng/mL.
如今,三唑类杀菌剂由于对环境的破坏及其副作用而被广泛使用,这引起了全球的关注。因此,在这项研究中,我们合成了聚乙烯醇/聚丙烯酸/CoFe-PBA@GO 静电纺丝纳米纤维,并将其作为有效、可降解且新颖的吸附剂应用于微管萃取(PT-μSPE)方法中,用于在高效液相色谱-紫外检测前对水果和蔬菜样品中的五种三唑类杀菌剂进行快速和同时提取。将具有超多孔结构和丰富官能团的 CoFe-PBA@GO 掺入聚合物基质中,由于分析物与合成纳米吸附剂之间形成氢键和π-π相互作用,提高了纳米纤维的萃取效率。利用时变方法优化了影响目标分析物萃取产率的各种重要因素。在最佳条件下,在 0.3-900.0ng/mL 的范围内获得了动态范围,相关系数≥0.999。PT-μSPE-HPLC-UV 方法的检出限范围为 0.1 至 0.3ng/mL。