Preparation of ashless cellulose paper standards for rapid determination of multi-element concentrations in airborne fine particulate matter using laser ablation inductively coupled plasma mass spectrometry.
Lei QiaoRuijie ZhangJing QiaoXiao-Yan HeZhiwei WuPublished in: RSC advances (2021)
In this study, we developed ashless cellulose filter papers as calibration standards in laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) to rapidly determine multi-element concentrations in airborne fine particulate matter (PM 2.5 ). To achieve this, the papers were treated by immersion in standard solutions, followed by evaporation of the solutions. The homogeneity of the paper standards was studied, and the results demonstrated that the elements were homogeneously distributed at the paper centers with slight fluctuations ( i.e. , relative standard derivation ≦ 8%). The instrument signal drift and instability were compensated using a pseudo internal standard ( 197 Au). The limits of detection established for LA-ICP-MS were obtained by the ablation of 11 lines on the procedural blank filter paper containing 0.5% HNO 3 , with values ranging from 0.01 (Sr) to 0.49 μg g -1 (Fe). The accuracy of the LA-ICP-MS determinations was validated using certified reference materials (CRMs) and analyzed using six line scans. The results showed acceptable analytical errors (<13%). Thus, our method was applied to analyze actual PM 2.5 samples. Moreover, the sources of PM 2.5 in Hangzhou were also investigated. Additionally, this method has considerable potential for multi-element analysis in other airborne dusts.
Keyphrases
- particulate matter
- mass spectrometry
- air pollution
- liquid chromatography
- capillary electrophoresis
- high performance liquid chromatography
- gas chromatography
- high resolution
- loop mediated isothermal amplification
- multiple sclerosis
- solid phase extraction
- ms ms
- radiofrequency ablation
- tandem mass spectrometry
- computed tomography
- ionic liquid
- molecularly imprinted
- catheter ablation
- aqueous solution
- high speed
- magnetic resonance imaging
- drinking water
- patient safety
- simultaneous determination
- emergency department
- newly diagnosed
- contrast enhanced
- risk assessment
- atomic force microscopy
- functional connectivity
- label free
- single molecule
- atrial fibrillation
- climate change
- resting state
- metal organic framework