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This study investigates the synthesis and characterization of CaO-rich biochar composites produced through the pyrolysis of waste mussel shells and spent coffee grounds at 800 °C. Biochar exhibited a mesoporous structure characterized by an average pore size of 37.7 nm and a surface area of 37.8 m 2 /g. The composite with a 1:1 mass ratio of mussel shells to coffee grounds (designated as MSBC1:1) has a superior maximum phosphate adsorption capacity of 375.6 mg/g. The adsorption process corresponded to the Langmuir isotherm and pseudo-second-order kinetics, indicating a predominant mechanism of monolayer chemisorption. Phosphate was mostly removed by electrostatic attraction, surface complexation, and the precipitation of hydroxyapatite (Ca 5 (PO 4 ) 3 (OH)). Thermodynamic assessments confirmed that the adsorption is spontaneous (ΔG° 0), and driven by entropy. MSBC1:1 composite exhibited strong resistance in a wide pH range (2-12) and ionic strengths (0-0.1 M NaCl), highlighting its practical significance for environmental remediation applications. Furthermore, MSBC1:1 achieved high phosphate removal efficiencies (76.5–97.3%) in real lake, river, and sewage waters, demonstrating strong potential for practical environmental remediation. The phosphate (P)-laden MSBC1:1 biochar served as an effective slow-release fertilizer, achieving significant improvements in radish ( Raphanus sativus L. ) growth metrics: a 10.2% increase in germination rates, a 9.7% enhancement in plant height, and increases in wet and dry biomass of 28.5% and 63.1%, respectively, compared to the control treatment. Furthermore, the use of P-laden MSBC1:1 improved soil pH and reduced salt concentrations compared to raw biochar and the control treatment. • Ca-modified biochar was prepared from mussel shells and spent coffee grounds. • MSBC1:1 composite showed the highest P adsorption capacity of 375.6 mg/g. • P removal efficiency reached 97.2% in effluent sewage at 2 g/L dosage. • XPS results confirmed Ca–O–P bond formation and HAP precipitation. • P-laden MSBC1:1 improved radish germination, showing fertilizer potential.
Eraliev et al. (Sat,) studied this question.