パルプ産業スラッジから高性能メチレンブルー除去用活性バイオ炭への持続可能な変換
Antonio Machado Netto1, Marcela de Oliveira Brahim Cortez1, José Pedro Rodrigues Ferreira1
1Department of Chemistry, Universidade Federal de Viçosa (UFV), Av. Peter Henry Rolfs, s/n, Campus Universitário, Viçosa, Minas Gerais 36570-900, Brasil.
Abstract:
The pulp and paper industry generates large amounts of biological sludge, which can be valorized into activated biochar (A-BC), offering environmental and economic benefits. In this work, A-BCs were produced from this residue using H3PO4 as an activating agent and subjected to different pyrolysis temperatures (400 to 550 °C). H3PO4 was selected for its superior activation performance over KOH, enhancing porosity and surface functionalization, while the temperature was chosen to match the main thermal degradation of the sludge's lignocellulosic matrix. The A-BCs were characterized by proximate and elemental analysis (fixed carbon content ∼30%), FTIR (CO, O-H, O-Si-O, and PO functional groups), XRD (predominantly amorphous structure), and Raman spectroscopy (D and G bands). Furthermore, BET surface areas from 7.68 to 1.52 m2 g-1, a higher heating value (HHV) from 3788 to 4750 kcal kg-1, and a point of zero charge (pHPZC) from 3.31 to 6.15 were obtained. Increasing the temperature from 400 to 450 °C increases surface area via pore formation, while higher temperatures reduce porosity due to pore collapse and lignin condensation. The A-BC produced at 450 °C (A-BC2) exhibited more than double the surface area and higher methylene blue (MB) removal efficiency than the other samples, consistent with the characterization results. The adsorption assays indicated that the maximum adsorption capacity was 390.73 mg g-1, with the Langmuir model fitting the experimental data best (R 2 = 0.996, R 2 adj = 0.995, and χ2 = 1.62). The adsorption kinetics followed the pseudo-second-order model (R 2 = 0.982, R 2 adj = 0.981, and χ2 = 7.78), indicating a chemisorption-controlled mechanism involving electron sharing or exchange between cationic dyes and oxygenated biochar surface groups. The study demonstrates that A-BC from cellulose industry sludge is a viable, sustainable option for dye-containing effluent treatment, supporting circular economy principles.
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