Computational-Based Study of QuEChERS Extraction of Cyclohexanedione Herbicide Residues in Soil by Chemometric Modeling

Molecules. 2018 Aug 11;23(8):2009. doi: 10.3390/molecules23082009.

Abstract

Assessment of two buffered QuEChERS (quick, easy, cheap, effective, rugged, and safe) versions (i.e., citrate and acetate) modified by including methanol to recover the residues of three cyclohexanedione oxime (CHD) herbicides and three of their byproducts from agricultural soil was performed. In this context, a full second-order face-centered factorial experimental design was developed to quantify the influences of the main five variables (i.e., extraction time, water content, soil weight, and extraction solvent volume and composition) on the target compound recoveries. The fitting equations satisfactorily described the extraction process behavior. The mathematical models also showed the most influencing independent variables (i.e., extraction solvent composition and soil weight). Handling simpler expressions was possible with the acetate QuEChERS but not with the citrate QuEChERS. The recoveries of the CHD residues were close to 100% after performing the extraction under suitable conditions. Furthermore, dispersive solid-phase extraction (dSPE) clean-up steps were assessed to reduce the matrix effect in mass spectrometry. In this sense, the citrate QuEChERS in combination with the PSA + C18 clean-up step was the best option for the extraction of CHD residues.

Keywords: QuEChERS; chemometric modeling; cyclohexanedione oxime herbicides; factorial design; matrix effect; pesticides; soil matrix.

MeSH terms

  • Chemical Fractionation* / methods
  • Chromatography, High Pressure Liquid
  • Herbicides / chemistry*
  • Molecular Structure
  • Pesticide Residues / analysis*
  • Soil / chemistry*
  • Solvents

Substances

  • Herbicides
  • Pesticide Residues
  • Soil
  • Solvents