Mixed-mode solid-phase extraction coupled with liquid chromatography tandem mass spectrometry to determine phenoxy acid, sulfonylurea, triazine and other selected herbicides at nanogram per litre levels in environmental waters.

J Chromatogr A

Department of Environment and Primary Industries, Farming Systems Research Division, Queenscliff Centre, Queenscliff 3225, Victoria, Australia; Centre for Aquatic Pollution Identification and Management (CAPIM), c/o School of Chemistry, The University of Melbourne, Parkville 3010, Victoria, Australia.

Published: January 2014

AI Article Synopsis

  • The method uses mixed-mode anion exchange solid-phase extraction (SPE) combined with liquid chromatography-tandem mass spectrometry to detect various herbicides in environmental waters.
  • This technique is effective in retaining and separating a range of herbicides based on their chemical properties, allowing for targeted elution of acidic, neutral, and basic compounds.
  • The method demonstrates high sensitivity with low limits of detection (LOD) and strong recovery rates, making it reliable for analyzing herbicide concentrations in water samples at very low levels.

Article Abstract

The method presented uses a mixed-mode anion exchange SPE and liquid chromatography tandem mass spectrometry to analyze 5 sulfonylurea, 8 phenoxy acid, 12 triazine and 6 other herbicides in environmental waters. The mixed-mode SPE cartridge is able to retain a wide range of herbicides with acidic-neutral-basic characteristics, particularly the highly polar and acidic compounds clopyralid, dicamba and picloram. The neutral and basic herbicides can be effectively eluted with methanol, after which the acidic herbicides can be eluted using acidified methanol. The method has achieved an LOD of 0.7-3ng/L for the sulfonylureas, 4-12ng/L for the phenoxy acids and 0.4-30ng/L for the triazine and additional herbicides, with recoveries in the range 76-107%, 73-126%, and 65-104%, respectively. The precision of the method, calculated as relative standard deviation (RSD), was below 10% for both sulfonylurea and phenoxy acid herbicides, and less than 20% for the remaining herbicides. The developed method was used to determine the concentration of target herbicides in a range of environmental waters, and many of the target herbicides were detected at ng/L level.

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http://dx.doi.org/10.1016/j.chroma.2013.12.021DOI Listing

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