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February 12, 2026Bioresources and Bioprocessing4 citationsOpen Access

Tailored biochar from oil palm trunk via controlled carbonization for efficient dye adsorption

MHMohd Idham HakimiMFMohammed Abdillah Ahmad FaridMNMohd Nor Faiz Norrrahim

Key Points

  • The study aims to explore how different carbonization conditions affect the properties and adsorption capacity of biochar produced from oil palm trunks.
  • Biochar produced at various temperatures (300, 400, 500 °C) and residence times (2, 3, 4 h).
  • Characterization of biochar for its physicochemical properties and adsorption capacity.
  • Langmuir isotherm analysis to evaluate adsorption performance.
  • Biochar produced at 300 °C for 2 h had the highest surface area (10.24 m2/g).
  • Carbon content peaked at 79.9% for biochar synthesized at 500 °C for 4 h.
  • Maximized dye removal (52.5%) was observed with prolonged carbonization time.
  • Surface chemical properties and pore accessibility were key in determining adsorption performance.

Abstract

Abstract Oil palm trunks (OPT) represent an underutilized agricultural byproduct that poses significant environmental challenges. The effectiveness of OPT as feedstock for biochar production will be depends on carbonization conditions, yet the relationship between process parameters and biochar properties remains insufficiently explored. This study investigates the potential of converting OPT into micropores bioadsorbent through controlled carbonization. Biochar was produced at temperatures of 300, 400, and 500 °C, with residence times of 2, 3, and 4 h, and subsequently characterized for its physicochemical properties and adsorption capacity. The results indicate that biochar produced at 300 °C for 2 h exhibited the highest surface area (10.24 m 2 /g), while the carbon content peaked at 79.9% in biochar synthesized at 500 °C for 4 h. Notably, although the maximum surface area was observed at 300 °C for 2 h, superior MB removal (52.5%) at longer residence time (4 h) indicates that adsorption performance was governed primarily by surface functional chemistry and pore accessibility rather than surface area alone. The enhanced adsorption at mild carbonization was attributed to the preservation of oxygen-containing surface functional groups rather than surface area alone. Langmuir isotherm analysis provided the best fit (R 2 > 0.9), yielding a maximum monolayer adsorption capacity of 3.57 mg g −1 and a favourable separation factor (R L < 1). These results demonstrate that adsorption performance of OPT-derived biochar is governed by surface chemistry controlled through carbonization severity, positioning OPT as a promising low-cost precursor for sustainable dye adsorption applications. Graphical abstract

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Cite This Study

Hakimi et al. (2026) studied this question.

synapsesocial.com/papers/698d6e7b5be6419ac0d544efhttps://doi.org/10.1186/s40643-026-01013-8
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