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March 14, 2026International Journal of Molecular Sciences3 citationsOpen Access

Simultaneous Multi-Ion Heavy Metal Sensing Using Pulse and Stripping Voltammetry at Functionalized Nanomaterial-Modified Glassy Carbon Electrodes

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AAAidyn AbilkasNKNargiz KazhkenovaBBBakhytzhan Baptayev

Key Points

  • The focus is on enhancing the detection of multiple heavy metal ions using modified glassy carbon electrodes.
  • Review of advances in electrochemical detection of heavy metals using GCEs modified with nanomaterials.
  • Evaluation of the effects of quantum chemical methods on understanding detection capabilities.
  • Discussion of common modification techniques and their applications for multi-ion detection.
  • Demonstrates the improved sensitivity and selectivity of electrochemical sensors for cadmium, lead, mercury, and chromium.
  • Highlights the cost-effectiveness and portability of nanomaterial-modified GCEs for environmental monitoring.
  • Identifies current challenges in the field, including electrode fouling and matrix interference.

Abstract

Glassy carbon electrodes (GCEs) have gained increased attention for the sensitive electrochemical detection of heavy metals due to their excellent chemical stability, wide potential window, and good electrical conductivity. These characteristics make GCEs an effective platform for sensor development. In particular, nanomaterial-modified GCEs have emerged as a promising strategy, offering enhanced sensitivity, selectivity, and faster response compared to conventional analytical techniques. This review summarizes recent advances over the past five years in the use of GCEs modified with chemically synthesized nanoparticles for the simultaneous detection of multiple heavy metal ions, including cadmium, lead, mercury, and chromium. It also includes how quantum chemical methods have aided our understanding of these phenomena. Heavy metals pose significant environmental and public health risks, with well-documented neurological, cardiovascular, reproductive, and carcinogenic effects, highlighting the need for accurate and rapid monitoring methods. Regulatory limits established by organizations such as the World Health Organization and the Environmental Protection Agency further emphasize the demand for highly sensitive detection technologies. This review examines the fundamental properties of GCEs, common nanomaterial modification techniques, and their application in multi-ion detection systems. Key advantages such as cost-effectiveness, portability, and adaptability to diverse sample matrices are highlighted. Current challenges, including electrode fouling, selectivity, and matrix interference, are also addressed, along with future perspectives for improving GCE-based sensors for real-world environmental monitoring.

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Cite This Study

Abilkas et al. (2026) studied this question.

synapsesocial.com/papers/69b4b9db18185d8a39801fb7https://doi.org/10.3390/ijms27062586
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