» Articles » PMID: 31384807

Application of Response Surface Methodology for Optimization of Metal-organic Framework Based Pipette-tip Solid Phase Extraction of Organic Dyes from Seawater and Their Determination with HPLC

Overview
Journal BMC Chem
Publisher Springer Nature
Specialty Chemistry
Date 2019 Aug 7
PMID 31384807
Citations 9
Authors
Affiliations
Soon will be listed here.
Abstract

This paper describes the application of response surface methodology (RSM) to develop a miniaturized metal organic framework based pipette-tip solid phase extraction for the extraction of malachite green (MG), rhodamine B (RB), methyl orange (MO) and acid red 18 (AR) dyes from seawater samples and their determination by high performance liquid chromatography. The effects of various parameters such as pH of the sample solution, type and amount of added salt, type and volume of eluent solvent, concentration of surfactant (triton X-114), sample volume, and number of cycles of extraction and desorption were investigated and optimized by two methods of one-variable-at-a-time and RSM based on Box-Behnken design. Under optimum conditions, the linear range of the method was 0.5-200.0 µg/L for RB and MG and 1.0-150.0 µg/L for AR and MO. Limits of detection of the analytes were obtained in the range of 0.09-0.38 µg/L. Reproducibility of the method (as RSD %) was better than 6.4%. The method has been successfully used for analysis of four dyes in seawater of Chabahar Bay.

Citing Articles

Development of a positive pressure-based instrumentation for efficient solid phase extraction.

Rai P, Mehrotra S, Lahane V, Yadav A, Sharma S J Food Sci Technol. 2025; 62(1):65-74.

PMID: 39867607 PMC: 11754568. DOI: 10.1007/s13197-024-06010-3.


Porous Polymer Sorbents in Micro Solid Phase Extraction: Applications, Advantages, and Challenges.

Hashemi S, Kaykhaii M Top Curr Chem (Cham). 2024; 382(4):37.

PMID: 39557712 DOI: 10.1007/s41061-024-00481-w.


Overview of Liquid Sample Preparation Techniques for Analysis, Using Metal-Organic Frameworks as Sorbents.

Wozniak J, Nawala J, Dziedzic D, Popiel S Molecules. 2024; 29(19).

PMID: 39407677 PMC: 11477957. DOI: 10.3390/molecules29194752.


Enhanced Sensitivity and Accuracy of Tb-Functionalized Zirconium-Based Bimetallic MOF for Visual Detection of Malachite Green in Fish.

Zhou Y, Jiang Y, Chen X, Long H, Zhang M, Tang Z Foods. 2024; 13(17).

PMID: 39272620 PMC: 11395321. DOI: 10.3390/foods13172855.


A DNA Biosensor Based on a Raspberry-like Hierarchical Nano-structure for the Determination of the Anticancer Drug Nilotinib.

Moarefdoust M, Jahani S, Moradalizadeh M, Motaghi M, Foroughi M ChemistryOpen. 2022; 11(3):e202100261.

PMID: 35333006 PMC: 8950773. DOI: 10.1002/open.202100261.


References
1.
Cioni , Bartolucci , Pieraccini , Meloni , Moneti . Development of a solid phase microextraction method for detection of the use of banned azo dyes in coloured textiles and leather. Rapid Commun Mass Spectrom. 1999; 13(18):1833-7. DOI: 10.1002/(SICI)1097-0231(19990930)13:18<1833::AID-RCM725>3.0.CO;2-R. View

2.
Rao P, Bhat R, Sudershan R, Krishna T, Naidu N . Exposure assessment to synthetic food colours of a selected population in Hyderabad, India. Food Addit Contam. 2004; 21(5):415-21. DOI: 10.1080/02652030410001668772. View

3.
Stammati A, Nebbia C, De Angelis I, Giuliano Albo A, Carletti M, Rebecchi C . Effects of malachite green (MG) and its major metabolite, leucomalachite green (LMG), in two human cell lines. Toxicol In Vitro. 2005; 19(7):853-8. DOI: 10.1016/j.tiv.2005.06.021. View

4.
Jain R, Mathur M, Sikarwar S, Mittal A . Removal of the hazardous dye rhodamine B through photocatalytic and adsorption treatments. J Environ Manage. 2007; 85(4):956-64. DOI: 10.1016/j.jenvman.2006.11.002. View

5.
Kumazawa T, Hasegawa C, Lee X, Hara K, Seno H, Suzuki O . Simultaneous determination of methamphetamine and amphetamine in human urine using pipette tip solid-phase extraction and gas chromatography-mass spectrometry. J Pharm Biomed Anal. 2007; 44(2):602-7. DOI: 10.1016/j.jpba.2006.12.025. View