Wu Xinze, Yang Hao, Lyu Hui, Chen Huaixia, Dang Xueping, Liu Xiaolan
Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Ministry-of-Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules & College of Chemistry and Chemical Engineering, Hubei University, Wuhan, China.
Public Inspection and Testing Center, Xinzhou District, Wuhan, China.
J Hazard Mater. 2023 Jul 5;453:131382. doi: 10.1016/j.jhazmat.2023.131382. Epub 2023 Apr 6.
Exploring coating materials with superior extraction efficiency has always been the pursuit in the field of solid phase microextraction (SPME). Metal coordination clusters with high thermal and chemical stability, abundant functional groups as active adsorption site are the promising coatings. In the study, a Zn(HL)(NO) (Zn, HL =(1,2-bis-(benzo[d]imidazol-2-yl)-ethenol) cluster coating was prepared and applied for SPME of ten phenols. Zn based SPME fiber exhibited high extraction efficiencies for phenols in headspace (HS) mode, which circumvented the pollution of SPME fiber. The adsorption isotherm and theoretical calculation indicated the adsorption mechanism of phenols on Zn was hydrophobic interaction, H-bond interaction and π-π stacking. Under the optimized extraction conditions, an HS-SPME-GC-MS/MS method was developed for the determination of ten phenols in water and soil samples. For ten phenolic compounds in water and soil samples, the linear ranges were 0.5-5000 ng/L and 0.5-250 ng/g, respectively. The limits of detection (LODs, S/N = 3) were 0.010-1.20 ng/L and 0.0048-0.16 ng/g, respectively. The precisions of single fiber and fiber-to-fiber were lower than 9.0% and 14.1%, respectively. The proposed method was applied for the detection of ten phenolic compounds in various water and soil samples, showing satisfactory recovery (72.1-118.8%). This study delivered a novel and efficient SPME coating material for the extraction of phenols.
探索具有卓越萃取效率的涂层材料一直是固相微萃取(SPME)领域的追求目标。具有高热稳定性和化学稳定性、富含作为活性吸附位点的官能团的金属配位簇是很有前景的涂层。在本研究中,制备了一种Zn(HL)(NO)(Zn,HL =(1,2-双-(苯并[d]咪唑-2-基)-乙烯醇)簇涂层,并将其应用于十种酚类的固相微萃取。基于锌的固相微萃取纤维在顶空(HS)模式下对酚类表现出高萃取效率,避免了固相微萃取纤维的污染。吸附等温线和理论计算表明酚类在锌上的吸附机制是疏水相互作用、氢键相互作用和π-π堆积。在优化的萃取条件下,建立了一种顶空固相微萃取-气相色谱-串联质谱(HS-SPME-GC-MS/MS)方法用于测定水和土壤样品中的十种酚类。对于水和土壤样品中的十种酚类化合物,线性范围分别为0.5 - 5000 ng/L和0.5 - 250 ng/g。检测限(LODs,S/N = 3)分别为0.010 - 1.20 ng/L和0.0048 - 0.16 ng/g。单纤维和纤维间的精密度分别低于9.0%和14.1%。所提出的方法应用于各种水和土壤样品中十种酚类化合物的检测,回收率令人满意(72.1 - 118.8%)。本研究为酚类的萃取提供了一种新型高效的固相微萃取涂层材料。