Analytical chemistry council

METHODS AND OBJECTS OF CHEMICAL ANALYSIS

 

An international journal devoted to all aspects of analytical chemistry

ISSN 2413-6166 (Online), ISSN 1991-0290 (Print)

Kiev University
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Innovative Design and Fabrication of Monolithic Columns Inside Microchip Devices for Determination of Ni(II) Ions

Salam Mohammed Nasser†, Ahmed Ali Alkarimi†*, and Dakhil Nassir Tah‡

† Department of Chemistry, College of Science, University of Babylon, Babylon, 51001 Iraq;
‡ Al-Mustaqbal University, Babylon, 51001, Iraq

*e-mail: sci.ahmed.ali@uobabylon.edu.iq

Methods Objects Chem. Anal., 2025, 20(2), p. 128-134

https://doi.org/10.17721/moca.2025.128-134

The article is distributed under open access Creative Commons Attribution License CC BY 4.0.

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Abstract

An innovative system was developed by fabricating a polymer-based monolith as an effective cation-exchange column within a glass microchip, achieved through in situ polymerization of glycidyl methacrylate (GMA), acrylic acid (AAc), and acrylamide (AAm) via free radical polymerization. Epoxy rings on the monolith surface were subsequently sulfonated with Na2SO3 at 70°C to form (R-SO3Na) groups. The microchip was integrated with a modified HPLC system equipped with a 3-way sub-valve (25 μL), allowing for the reagent-injection of the imidazole-azo ligand MPDADPI to react with Ni(II) ions and form a colored complex at 513 nm within 30 seconds. The calibration curve followed Beer’s law over the range of 0.001–3.5 μg mL-¹ (R² = 0.9977). Limits of detection (LOD) and quantification (LOQ) were 0.87 and 2.87 ng mL-¹, respectively. The method was validated using atomic absorption spectrophotometry (AAS).An innovative system was developed by fabricating a polymer-based monolith as an effective cation-exchange column within a glass microchip, achieved through in situ polymerization of glycidyl methacrylate (GMA), acrylic acid (AAc), and acrylamide (AAm) via free radical polymerization. Epoxy rings on the monolith surface were subsequently sulfonated with Na2SO3 at 70°C to form (R-SO3Na) groups. The microchip was integrated with a modified HPLC system equipped with a 3-way sub-valve (25 μL), allowing for the reagent-injection of the imidazole-azo ligand MPDADPI to react with Ni(II) ions and form a colored complex at 513 nm within 30 seconds. The calibration curve followed Beer’s law over the range of 0.001–3.5 μg mL-¹ (R² = 0.9977). Limits of detection (LOD) and quantification (LOQ) were 0.87 and 2.87 ng mL-¹, respectively. The method was validated using atomic absorption spectrophotometry (AAS).

Keywords: monolith, in-situ polymerization, microchip device, determination, Ni(II)

Article language: En.


Publisher: Taras Shevchenko National University, Kiev Ukraine

(Analytical chemistry department at Taras Shevchenko National University, 64 Vladimirskaya STR., Kiev, 01601 UKRAINE)
analysis@univ.kiev.ua, www.univ.kiev.ua, +380 (44) 2393444

The journal is indexed in SCOPUS and Web of Science

The journal website: www.moca.net.ua

The articles in this journal are licensed under CC BY 4.0