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Oyster Mushroom · 2025 · Journal Article

Medium relevance

Fungal mycelium enhanced magnetic biochar from rice straw for efficient tetracycline adsorption: A sustainable strategy for agricultural waste valorization

Pleurotus ostreatus

Energy & fatigue
SpeciesOyster Mushroom
JournalIndustrial crops and products
Year2025

Key points

  • This study presents a sustainable fungal-biochar refinery approach to convert rice straw into a high-performance magnetic adsorbent
  • The material was synthesized via solid-state fermentation using Pleurotus ostreatus followed by carbonization and KHCO₃ activation at 900 °C. The fungal pretreatment significantly enhanced porosity, yielding a specific surface area of 2587.51 m² g⁻¹ (a 22 % increase over conventional pyrolysis)
  • Characterization by SEM, XRD, FT-IR, XPS, and N₂ physisorption confirmed a highly porous architecture and abundant surface chemistry
  • After Fe₃O₄ loading, the biochar retained exceptional adsorption capacity for tetracycline hydrochloride, outperforming most reported agricultural waste-based adsorbents, and achieved facile magnetic recovery (>92 %)
  • The adsorbent performed robustly across a broad pH range (e.g., 99.31 % removal at pH 4) and exhibited excellent reusability with < 15 % capacity loss over five cycles
  • This work offers an effective strategy for biomass waste into functional materials and a closed-loop solution for simultaneous agricultural waste management and water remediation, aligning with circular bioeconomy principles

From the paper

Abstract

This study presents a sustainable fungal-biochar refinery approach to convert rice straw into a high-performance magnetic adsorbent. The material was synthesized via solid-state fermentation using Pleurotus ostreatus followed by carbonization and KHCO₃ activation at 900 °C. The fungal pretreatment significantly enhanced porosity, yielding a specific surface area of 2587.51 m² g⁻¹ (a 22 % increase over conventional pyrolysis). Characterization by SEM, XRD, FT-IR, XPS, and N₂ physisorption confirmed a highly porous architecture and abundant surface chemistry. After Fe₃O₄ loading, the biochar retained exceptional adsorption capacity for tetracycline hydrochloride, outperforming most reported agricultural waste-based adsorbents, and achieved facile magnetic recovery (>92 %). Adsorption kinetics and isotherms were best described by the Elovich and Redlich-Peterson models, respectively. The adsorbent performed robustly across a broad pH range (e.g., 99.31 % removal at pH 4) and exhibited excellent reusability with < 15 % capacity loss over five cycles. This work offers an effective strategy for biomass waste into functional materials and a closed-loop solution for simultaneous agricultural waste management and water remediation, aligning with circular bioeconomy principles.

Citation

Liu W, Tao Y, Zhang K, Tang S, Liang D, Li J, et al. (2025). Fungal mycelium enhanced magnetic biochar from rice straw for efficient tetracycline adsorption: A sustainable strategy for agricultural waste valorization. Industrial crops and products

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