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High-value valorization of rice husk into N/S co-doped hierarchical porous biochar for burst-free controlled release of urea

作者:Yuyang Cong, Jie Li, Dongni Qiu, Honghao Chen, Zhenlin Huang, Mingfeng Wang, Li Chang, Donghai Wang, Zhiwen Chen, Ke Zhang · 发表于:Industrial Crops and Products · 年份:2026 · DOI:10.1016/j.indcrop.2026.123678 · 研究领域:Polymer-Based Agricultural Enhancements、Phosphorus and nutrient management、Carbon Dioxide Capture Technologies

The valorization of agricultural and forestry residues into advanced functional materials represents a crucial pathway for promoting a sustainable circular bioeconomy. To unravel the impact of solid-phase carbonization kinetics, nitrogen and sulfur co-doped hierarchical porous biochars (BCM s ) were engineered via the synergistic carbonization and interfacial reconstruction of rice husk with ternary natural biopolymers (lignosulfonate, carboxymethyl cellulose, and chitosan) across a controlled temperature gradient. Tracking the thermally driven evolution of the carbon lattice revealed that carbonization at an optimal temperature of 500℃ maximizes defect proliferation. The optimized biochar-based composite (BCM 500 , specific surface area of 9.802 m 2 /g) exhibited a high equilibrium urea adsorption capacity of 132.273 mg/g alongside robust anti-interference capabilities and a stable capacity retention of 67.9% after five regeneration cycles. Comprehensive thermodynamic and kinetic analyses, integrated with high-resolution X-ray photoelectron spectroscopy, elucidated that interfacial nutrient immobilization is predominantly governed by a spontaneous exothermic chemisorption process. Engineered topological defects, including pyridinic-N, pyrrolic-N, and oxidized sulfur, act as specific active centers to firmly anchor urea molecules via strong intermolecular hydrogen bonds and electrostatic interactions. Furthermore, a practical melt-infiltrated slow-release fertilizer (BCM 500 ...