Huang Ting, Lei Xiaoyun, Wang Shuqiang, Lin Chenchen, Wu Xiaoping
Key Laboratory for Analytical Science of Food Safety and Biology; College of Chemistry, Fuzhou University, Fuzhou 350116, China; International (HongKong Macao and Taiwan) Joint Laboratory on food safety and environmental analysis, Fuzhou University, Fuzhou 350116, China.
Engineering Technology Research Center on Reagent and Instrument for Rapid Detection of Product Quality and Food Safety, Fuzhou 350116, China.
J Chromatogr A. 2023 Mar 15;1692:463849. doi: 10.1016/j.chroma.2023.463849. Epub 2023 Feb 5.
A facile in-situ ionothermal synthesis strategy for fabrication of ionic liquids/metal-organic frameworks (MOFs) (ILs@ZIF-8) nanocomposites hybrid monolith has been proposed to facilitate highly effective capillary microextraction (CME) of ultra-trace microcystins (MCs) in environmental waters. The ZnO nanoparticles (ZnO-NPs) were initially introduced into a precursor polymer monolith, and acted as the metal sources and anchoring seeds to construct ILs@ZIF-8 nanocomposites hybrid monolith via a nanoparticle-directed in-situ growth route in confined imidazolium ionic liquids. Detailed characterization based on scanning electron microscopy (SEM), X-ray diffraction (XRD) and N adsorption-desorption isotherms confirmed that both the morphology and porous structure of ZIF-8 were finely tuned by the incorporation of ILs, which acted as solvents and structure directing agent. The confinement of ILs in ZIF-8 framework endows the ILs@ZIF-8 hybrid monolith additional adsorption sites and satisfied water stability for the synergistic enhancement of adsorption efficiency of MCs via multiple interactions (including π-π stacking, hydrogen bonding, hydrophobic and electrostatic interactions). Coupling ILs@ZIF-8 hybrid monolith-based CME to LC-MS enabled an efficient and sensitive analysis of MCs in surface waters with ultra-low detection limits (LOD ≤ 1.4 ng L) and satisfactory recoveries (70.2%-107.0%). This study showed great potential for feasible design and fabrication of ILs@MOFs composites with synergistic and tunable structures toward efficient sample preparation applications.
提出了一种简便的原位离子热合成策略,用于制备离子液体/金属有机框架(MOFs)(ILs@ZIF-8)纳米复合材料杂化整体柱,以促进环境水样中超痕量微囊藻毒素(MCs)的高效毛细管微萃取(CME)。首先将氧化锌纳米颗粒(ZnO-NPs)引入前驱体聚合物整体柱中,并作为金属源和锚定种子,通过在受限的咪唑鎓离子液体中纳米颗粒定向原位生长路线构建ILs@ZIF-8纳米复合材料杂化整体柱。基于扫描电子显微镜(SEM)、X射线衍射(XRD)和N吸附-脱附等温线的详细表征证实,通过引入作为溶剂和结构导向剂的ILs,ZIF-8的形态和多孔结构都得到了精细调节。ILs在ZIF-8框架中的限制赋予了ILs@ZIF-8杂化整体柱额外的吸附位点和令人满意的水稳定性,通过多种相互作用(包括π-π堆积、氢键、疏水和静电相互作用)协同提高MCs的吸附效率。将基于ILs@ZIF-8杂化整体柱的CME与LC-MS联用,能够对地表水中的MCs进行高效、灵敏的分析,检测限超低(LOD≤1.4 ng L)且回收率令人满意(70.2%-107.0%)。这项研究显示了在可行设计和制备具有协同可调结构的ILs@MOFs复合材料以用于高效样品制备应用方面的巨大潜力。