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March 3, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Highly Efficient Elimination of As(V) and As(III) from Aqueous Media Utilizing Fe-Ti-Mn/Chitosan Composite Xerogel Beads

CCChunting ChenJLJunbao LiuHCHongpeng Cao

Key Points

  • Arsenic species As(V) and As(III) were effectively removed using composite xerogel beads with high efficiency.
  • The maximum adsorption capacities were 22.6 mg/g for As(III) and 16.2 mg/g for As(V) at 25 °C.
  • Adsorption kinetics were rapid, achieving equilibrium within 24 hours with a pseudo-second-order model fit.
  • The adsorbent demonstrated strong regeneration capacity, supporting its practical application in water treatment.

Abstract

Inorganic arsenic species, As(V) and As(III), present significant toxicity and carcinogenic risks in water, making their effective removal critical for global water safety. This study introduces Fe-Ti-Mn/chitosan composite xerogel beads (FTMO/chitosan) designed to overcome the limitations of conventional single-component adsorbents, particularly for simultaneous removal of As(V) and As(III), and to address solid-liquid separation challenges common with powdered adsorbents. The xerogel beads feature a rough, porous surface composed of agglomerated nanoparticles. Batch tests demonstrated that the Freundlich model provided a better fit for the adsorption process, with max uptake capacities of 22.6 mg/g and 16.2 mg/g for As(III) and As(V) at 25 °C, respectively, outperforming most reported adsorbents. Adsorption kinetics were fast, reaching equilibrium within 24 h and fitting well with a pseudo-second-order kinetic model. The adsorption efficiency was strongly influenced by solution pH and the existence of minor coexisting anions. Mechanistically, As(V) removal occurred via inner-sphere surface complexation through the substitution of surface hydroxyl groups, whereas As(III) removal involved a coupled oxidation-adsorption process: MnO2 oxidized As(III) to As(V), which was then adsorbed onto the material surface. Furthermore, the adsorbent confirmed excellent regeneration capacity and operational stability, illuminating its promising potential for frequent utilization in water treatment and environmental remediation applications.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69a75ac8c6e9836116a21088https://doi.org/10.3390/gels12020112
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