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April 8, 2026Chemosensors1 citationsOpen Access

Highly Sensitive Detection of Phenylbutazone with Metallic Particle-Based Electrochemical Sensors

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AMAna-Raluca MăghiniciACAndreea-Loredana ComănescuAGAndrei-Daniel Geman

Key Points

  • This research aims to optimize the detection of phenylbutazone using metallic particle-based electrochemical sensors.
  • Utilized cyclic voltammetry with catechol as a redox probe.
  • Tested four types of screen-printed electrodes modified with different transitional metal particles.
  • Evaluated electrochemical responses in potassium ferrocyanide/ferricyanide and catechol solutions.
  • Characterized phenylbutazone using Fourier-transform infrared spectroscopy.
  • Achieved a linearity range for detection of 0.01 to 1.00 μM of phenylbutazone.
  • Attained a detection limit of 1.53 nM.
  • The iridium-modified sensor showed a relative error lower than 4% for accurate detection.

Abstract

Nonsteroidal anti-inflammatory drugs such as phenylbutazone (PBZ) are among the most widely used medications globally due to their effectiveness in relieving pain and reducing inflammation. This study aims to detect PBZ with metallic particle-based electrochemical sensors using cyclic voltammetry (CV) in the presence of catechol as a redox probe. The approach focuses on evaluating the electrochemical behaviour of PBZ under different experimental conditions and optimizing the detection parameters to develop a simple, rapid, and cost-effective analytical method suitable for this pharmaceutical compound in lab practice. CV was performed using four types of screen-printed electrodes, each modified with different transitional metal particles, in potassium ferrocyanide/potassium ferricyanide, catechol, and catechol-PBZ solutions to study the electrochemical response and detection capability for PBZ. The best performance characteristics were obtained for the sensor modified with Ir particles that detect PBZ, with a linearity range of 0.01 to 1.00 μM and a detection limit of 1.53 nM. Additionally, Fourier-transform infrared spectroscopy (FT-IR) was used to characterize the PBZ in pharmaceuticals. The method using an iridium-modified sensor developed in this study allows the accurate detection of PBZ in pharmaceuticals with a relative error lower than 4%.

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Cite This Study

Măghinici et al. (2026) studied this question.

synapsesocial.com/papers/69d5f05d74eaea4b11a79c55https://doi.org/10.3390/chemosensors14040088
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