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January 14, 2026Molecules14 citationsOpen Access

Coconut Shell-Derived Activated Carbons: Preparation, Physicochemical Properties, and Dye Removal from Water

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VLVanda María Cachola Maldito LowdenMAMaría Francisca Alexandre-FrancoJGJuan M. Garrido-Zoido

Key Points

  • The study aims to evaluate the effectiveness of various activation methods for producing high-performance activated carbons from coconut shells for wastewater treatment.
  • Coconut shells converted to activated carbons using physical and chemical activation methods.
  • Comparison of porosity and surface chemistry of activated samples using specific activation methods.
  • Adsorption tests conducted with different dyes to assess dye retention capability.
  • Steam-activated sample A-ST achieved SBET of 738 m2 g−1 and showed favorable dye uptake.
  • KOH-activated sample A-KOH reached SBET of 1600 m2 g−1, exhibiting the highest adsorption capacity.
  • Methylene blue demonstrated the strongest retention due to advantageous interactions facilitated by the activated carbon structure.

Abstract

Valorizing coconut shell waste as a renewable lignocellulosic precursor offers a sustainable route to produce high-performance activated carbons for wastewater treatment. In this study, coconut shells were transformed into activated carbons through physical activation (air, CO2, steam) and chemical activation (H3PO4, ZnCl2, KOH), allowing direct comparison of how each method influences porosity and surface chemistry. Among the physically activated samples, steam activation produced the best material, A-ST, with SBET = 738 m2 g−1, Vmi = 0.38 cm3 g−1 and Vme = 0.07 cm3 g−1. KOH activation yielded the top-performing carbon, A-KOH, achieving SBET = 1600 m2 g−1, Vmi = 0.74 cm3 g−1, and Vme = 0.22 cm3 g−1. Adsorption tests with methylene blue, methyl orange, and orange G showed a clear link between physicochemical features and dye uptake. A-ST and A-KOH exhibited the highest capacities due to their wide micro–mesoporosity and favorable surface charge at the adsorption pH. In both cases, methylene blue was most strongly retained, confirming that large aromatic cations benefit from π–π interactions with graphene-like layers and easy micropore access. Overall, the results demonstrate that coconut-shell valorization is maximized when activation enhances both porosity and surface chemistry, enabling the production of tailored sorbents for the efficient removal of organic contaminants.

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Cite This Study

Lowden et al. (2026) studied this question.

synapsesocial.com/papers/6967191987ba607552bb90cfhttps://doi.org/10.3390/molecules31020263
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