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September 17, 2025Minerals12 citationsOpen Access

Synergistic ZnO–CuO/Halloysite Nanocomposite for Photocatalytic Degradation of Ciprofloxacin with High Stability and Reusability

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WAWillams A. AlbuquerqueAFAdilson J. Neres FilhoYRY. Romaguera-Barcelay

Key Points

  • Photocatalytic degradation achieved 76% removal of ciprofloxacin in 120 minutes under optimal conditions.
  • Utilizing a catalyst concentration of 0.5 g L−1, the nanocomposite demonstrated a significant increase in charge mobility due to a 3.02 eV band gap.
  • Employing a hydrothermal method, this analysis confirmed the successful integration of ZnO and CuO nanoparticles within halloysite.
  • The halloysite-based nanocomposite exhibits high reusability after multiple reaction cycles, highlighting its practical applicability.

Abstract

This study focused on creating a novel material by integrating ZnO and CuO nanoparticles into the structure of halloysite using a hydrothermal method. The formation of the nanocomposite was validated through X-ray diffraction and Raman analysis, which confirmed the presence of ZnO and CuO phases without compromising the structure of halloysite. Microscopic analysis revealed a well-distributed presence of metallic oxide nanoparticles within the nanotubular structure of halloysite, which adhered to both the outer and inner surfaces of the clay mineral. Optical characterization identified a substantial density of defects, which played a key role in improving the performance of the supported semiconductors. Furthermore, the narrow band gap at 3.02 eV promoted the mobility of photogenerated charges. Photocatalytic tests yielded promising results, demonstrating a synergistic effect between photocatalysis and adsorption processes that positively influenced the removal of ciprofloxacin from solutions. The material achieved up to 76% removal of the antibiotic within 120 min, utilizing a catalyst concentration of 0.5 g L−1 with a pollutant concentration of 20 mg L−1. In reuse experiments, the material exhibited high recyclability even after multiple reaction cycles. Halloysite-based nanocomposites represent a strategic advancement in environmental remediation technologies, contributing to the development of clean, effective, and reusable materials.

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Cite This Study

Albuquerque et al. (2025) studied this question.

synapsesocial.com/papers/68d46ccf31b076d99fa69140https://doi.org/10.3390/min15090977
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