PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 5, 2026Separations0 citationsOpen Access

Adsorption of Nystatin from Aqueous Solutions Using Nanoclay: Performance, Mechanisms, and Sustainability Aspects

View Full Paper
ASAnna Karoline Freires de SousaABAnna Katharina Medeiros de BritoHMH. Matos

Key Points

  • The research aims to evaluate the performance of nanoclay for removing nystatin from aqueous environments.
  • Investigated effects of pH on adsorption efficiency.
  • Conducted kinetic and equilibrium studies to determine adsorption rates and capacity.
  • Utilized structural and spectroscopic analyses (XRD and FTIR) to assess adsorption mechanisms.
  • Achieved over 98% removal efficiency of nystatin across a wide pH range (3-11).
  • Kinetic data aligned with the pseudo-second-order model, indicating high adsorption affinity.
  • Equilibrium data fitted the Sips isotherm model, with a maximum adsorption capacity of approximately 911 mg/g.

Abstract

The continuous release of pharmaceutical compounds into aquatic environments poses significant challenges to environmental sustainability, as conventional wastewater treatment plants are often ineffective in removing recalcitrant and bioactive molecules. In this study, the adsorption performance of nanoclay was systematically evaluated for the removal of nystatin, a polyene antifungal of emerging environmental concern, from aqueous solutions. The effects of solution pH, adsorption kinetics, equilibrium isotherms, and adsorption mechanisms were investigated under environmentally relevant conditions. Nanoclay exhibited outstanding removal efficiency, exceeding 98% across a wide pH range (3–11), thereby demonstrating strong operational robustness and minimal sensitivity to pH variations. Structural and spectroscopic analyses (XRD and FTIR) confirmed that adsorption occurred predominantly on the external surface of the nanoclay, without significant disruption of its lamellar structure, and was governed mainly by hydrophobic interactions and hydrogen bonding. Kinetic data were best described by the pseudo-second-order model, with rapid equilibrium achieved within approximately 20 min, indicating high affinity between nystatin and the adsorbent surface. Equilibrium data were best fitted by the Sips isotherm model, reflecting surface heterogeneity and a favorable adsorption process, with a high maximum adsorption capacity of approximately 911 mg/g. A preliminary cost analysis revealed low raw material costs, while energy consumption, particularly during drying, was identified as the main economic limitation. Overall, the results highlight Nanoclay as an efficient, robust, and promising adsorbent for the sustainable removal of hydrophobic pharmaceutical contaminants from water and wastewater.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Sousa et al. (2026) studied this question.

synapsesocial.com/papers/6984349af1d9ada3c1fb2f3dhttps://doi.org/10.3390/separations13020053
Ask AI
Helpful
Bookmark
Share
View Full Paper