Journal Article

·2026 OPEN ACCESS

A comprehensive experimental study on heavy metal ion sensing performance of ZnPc and its electrospun nanofibers

Birsel Can Ömür YTU , Nursel Can YTU , Ahmet Altındal YTU

Journal of Materials Science Materials in Electronics

Abstract

Abstract The interactions of various heavy metal ions (HMIs) including Cu 2+ , Fe 2+ , Zn 2+ , and Cr 3+ with zinc phthalocyanine (ZnPc) thin film and electrospun nanofibers (nZnPc) in aqueous solutions were comparatively investigated by using quartz crystal microbalance (QCM) technique, giving the order of maximum sensitivity S Fe 2+ > S Cu 2+ > S Zn 2+ > S Cr 3+ for ZnPc, while for the nZnPc-based sensor was S Zn 2+ > S Cr 3+ > S Fe 2+ > S Cu 2+ . Formation of the ZnPc nanofibers was investigated by scanning electron microscopy (SEM) images, and these analyses showed that PVA/ZnPc composite nanofibers were successfully produced. QCM results have shown that ZnPc and nZnPc-based sensors are very promising materials for the sensing of the HMIs in water with a response time of 2 s. Limit of detection (LoD) calculations also showed that ZnPc and nZnPc have great potential for the detection of Cu 2+ ions, with the LoD values of 0.14 and 0.19 ppm, respectively. HMI adsorption data were analyzed using Langmuir, Freundlich, and Temkin models, and it was found that the Freundlich model was the most suitable isotherm to represent HMI adsorption onto ZnPc and nZnPc, except for the adsorption of Fe 2+ ions on the nZnPc surface.

Keywords

Nanofiber Adsorption Quartz crystal microbalance Freundlich equation Aqueous solution Detection limit Metal ions in aqueous solution Ion Materials science

Subject Areas

Molecular Sensors and Ion Detection ·Spectroscopy ·Physical Sciences
Conducting polymers and applications ·Polymers and Plastics ·Physical Sciences
Acoustic Wave Resonator Technologies ·Biomedical Engineering ·Physical Sciences