Eucalyptus wood waste biochar: a green solution for fluoranthene contamination in wastewater.

This study investigates the removal of fluoranthene (Flu) from vehicle-wash wastewater (VWW) using biochar (EWB) derived from eucalyptus wood waste. Analytical techniques such as surface area analysis (SAA), scanning electron microscopy (SEM), and fourier transform infrared spectroscopy (FT-IR) were...

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Publicado en:International Journal of Environmental Health Research Vol. 35; no. 11; pp. 3309 - 3323
Autores principales: Ren, Yu Shuang, Tynybekov, Bekzat, Nurmahanova, Akmaral, Ibragimov, Talgat, Kurmanbay, Ussen, Nazarbekova, Saltanat, Kuatbayev, Askhat, Sartayeva, Akmaral, Ilyas, Muhammad, Machado da Silva Acioly, Thiago
Formato: equations & formulas pictorial research tables/charts Journal Article
Publicado: Taylor & Francis Ltd Nov2025
Acceso en línea:Ver este registro en EBSCOhost
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      dt: Nov2025
      vid: 35
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      pub: Taylor & Francis Ltd
      place: Philadelphia, Pennsylvania
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        10.1080/09603123.2025.2483976
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        atl: Eucalyptus wood waste biochar: a green solution for fluoranthene contamination in wastewater.
      aug:
        au:
          Ren, Yu Shuang
          Tynybekov, Bekzat
          Nurmahanova, Akmaral
          Ibragimov, Talgat
          Kurmanbay, Ussen
          Nazarbekova, Saltanat
          Kuatbayev, Askhat
          Sartayeva, Akmaral
          Ilyas, Muhammad
          Machado da Silva Acioly, Thiago
        affil: School of Economics and Management, Jilin Jianzhu University, Chang Chun, China
      sug:
        subj:
          Polycyclic Hydrocarbons, Aromatic Adverse Effects
          Water Pollution Prevention and Control
          Eucalyptus
          Charcoal
          Human
          Microscopy, Electron
          Spectrophotometry, Infrared
          Particle Size
          Adsorption
          Physics
          Descriptive Statistics
          Chi Square Test
      ab: This study investigates the removal of fluoranthene (Flu) from vehicle-wash wastewater (VWW) using biochar (EWB) derived from eucalyptus wood waste. Analytical techniques such as surface area analysis (SAA), scanning electron microscopy (SEM), and fourier transform infrared spectroscopy (FT-IR) were employed to characterize the EWB. Optimal conditions for Flu adsorption (98.80%) were determined as 40 ppm initial concentration, 60 minutes contact time, pH 5, 60°C, and 0.4 g adsorbent dosage. The adsorption process was evaluated using kinetic models and isotherms, showing that Flu adsorption onto EWB follows a pseudo-second order kinetic model. The Langmuir isotherm provided the best fit for the experimental data. Thermodynamic analysis revealed that the adsorption process is exothermic and spontaneous, as indicated by the values of entropy (ΔS°), Gibbs free energy (ΔG°), and enthalpy (ΔH°). A comparative analysis with commercial adsorbents demonstrated the high efficacy of EWB in removing Flu from industrial wastewater, achieving over 98% efficiency.
      pubtype: Academic Journal
      doctype:
        equations & formulas
        pictorial
        research
        tables/charts
        Journal Article
      ougenre: Article
    language: English
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