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January 25, 2026Journal of Environmental Quality1 citationsOpen Access

Temperature effects on vanadium speciation and adsorption to biochar alone and biochar–metal oxide nanoparticle composites

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DSDileep Kumar SinghSISrimathie P. IndraratneBABhavya Anil

Key Points

  • The aim is to explore how temperature affects vanadium adsorption and speciation in biochar and its composites with metal oxide nanoparticles.
  • Conducted V adsorption experiments at pH 7.5 and various temperatures (22°C and 4°C)
  • Utilized concentrations of vanadium from 0 to 40 mg L−1 for adsorption tests
  • Analyzed surface characteristics using SEM-EDS and Fourier transform infrared spectroscopy
  • Applied Visual MINTEQ software to model V species under experimental conditions
  • Fitted adsorption data to Freundlich and Langmuir isotherms
  • Maximum adsorption capacity ranked as BCAl-cold = BCAl-warm > BCTi-cold > BCTi-warm = BC-cold = BC-warm > BCFe-warm = BCFe-cold
  • Higher predicted orthovanadate percentage at warm temperatures
  • Dominant vanadium species at pH 7.5 was H2VO4− for both temperatures
  • Microaggregates found in BCAl and BCTi indicating larger effective surface area
  • V and Al enrichment observed on BCAl surfaces suggesting formation of inner-sphere complexes

Abstract

Abstract Vanadium (V) is a potentially toxic metal widely distributed in the environment. This study investigates temperature effects on V adsorption and speciation in biochar (BC) and BC–metal oxide composites under conditions relevant to contaminated soils in temperate climates. While BC and metal oxide nanoparticles can individually immobilize V, limited information exists on temperature effects. This study investigates V adsorption and surface characteristics of BC alone and BC combined with iron (Fe), aluminum (Al), and titanium (Ti) oxide nanoparticles (BC: oxides at 5:1 ratio) at warm (22°C) and cold (4°C) temperatures. V adsorption was conducted at pH 7.5 using concentrations from 0 to 40 mg L −1 . Visual MINTEQ modeling software was used to predict dissolved V species at experimental conditions. Surface characteristics were examined using scanning electron microscopy‐energy dispersive X‐ray spectroscopy (SEM‐EDS) and Fourier transform infrared spectroscopy. Adsorption data were fitted to the Freundlich ( r 2 ∼0.99) and Langmuir ( r 2 = 0.66–0.96) isotherms. Maximum adsorption capacity followed the order: BCAl‐cold = BCAl‐warm > BCTi‐cold > BCTi‐warm = BC‐cold = BC‐warm > BCFe‐warm = BCFe‐cold. Predicted orthovanadate (%) was higher at warm temperatures. H 2 VO 4 − was the dominant species at pH 7.5 under both temperatures. Microaggregates were observed in BCAl and BCTi, indicating greater surface area than BC or BCFe. SEM‐EDS showed V and Al enrichment on BCAl surfaces suggesting the inner‐sphere complexes between Al–oxygen (O) and H 2 VO 4 − . These results offer mechanistic insight into V adsorption on BC–nano‐oxide composites under varying climatic conditions and support their potential use in remediating V‐contaminated soils.

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Cite This Study

Singh et al. (2026) studied this question.

synapsesocial.com/papers/6975b1a9feba4585c2d6d374https://doi.org/10.1002/jeq2.70139
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