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◆ ChemPlusChem2026-08-01

Tailoring Biowaste-Derived Activated Hydrochar With Multifunctionality Toward Antibiotic Adsorption, CO2 Capture, and Energy Storage.

Şeyda Karadirek, Nergiz Kanmaz, Özlem Tuna, Hatice Hande Mert, Mehmet Selçuk Mert

原始摘要(英文原文)· Original abstract
This work investigates the potential of hydrochar (HC) produced from date seeds (DS) as a multifunctional material. Two adsorbents were synthesized by the hydrothermal route: HC and phosphoric acid-activated hydrochar (AHC). Their performances were assessed for levofloxacin (Lvx) removal, CO2 uptake, and as stabilizers in palmitic acid (PA)-based composite phase change materials (PCMs). The maximum adsorption capacity of HC and AHC for Lvx was found to be 18.05 and 41.94 mg/g, respectively, at 25 °C and an initial concentration of 10 mg/L, due to the larger surface area, increased active sites, and lower binding energy, supported by Brunauer-Emmett-Teller analysis (BET), scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS). Kinetic data were well described by Elovich and intraparticle diffusion models, while Langmuir and Temkin isotherms gave the best equilibrium fits. The adsorption showed a spontaneous and exothermic behavior. CO2 capture measurements demonstrated the superior efficiency of AHC (1.53 mmol/g) compared to HC (0.32 mmol/g). Both HC and AHC were utilized to obtain shape-stabilized PCMs, where PA/AHC exhibited higher latent heat storage and thermal stability relative to PA/HC. Overall, the findings highlight activated HC as a versatile material that can simultaneously address antibiotic pollution, CO2 mitigation, and energy storage challenges.
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Tailoring Biowaste-Derived Activated Hydrochar With Multifunctionality Toward Antibiotic Adsorption, CO2 Capture, and Energy Storage. — 科研速览 Science Skim