Effect of the Thermal Activation on the Adsorption Capacity of Cationic and Anionic Dyes in Magnetic Carbon
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American Chemical Society (ACS)
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The sustainable synthesis of multifunctional magnetic carbons was achieved using sugar cane bagasse by hydrothermal carbonization with ferric nitrate, followed by thermal activation under CO<sub>2</sub> and N<sub>2</sub> at 500-900 °C. Structural, magnetic, and surface characterizations were performed to evaluate their physicochemical properties and explore their potential for environmental applications, including the adsorption of cationic and anionic dyes. Activation at 700 °C significantly enhanced the material properties, particularly under N<sub>2</sub>, yielding a high specific surface area (241 m<sup>2</sup> g<sup>-1</sup>), notable magnetization (27.4 emu g<sup>-1</sup>), and a low <i>I</i> <sub>D</sub>/<i>I</i> <sub>G</sub> ratio (0.42), indicative of graphitic domains. While CO<sub>2</sub> activation led predominantly to magnetite formation, N<sub>2</sub> favored the formation of iron carbide and zero-valent iron. The materials exhibited high adsorption capacities for methylene blue (MB; 81.4 mg g<sup>-1</sup>) and reactive blue 19 (RB19; 74.8 mg g<sup>-1</sup>). Adsorption kinetics followed mixed mechanisms involving both physisorption and chemisorption, while the Sips isotherm model best described the equilibrium, suggesting heterogeneous surface interactions. Activation at 700 °C under N<sub>2</sub> was particularly effective, enhancing MB and RB19 adsorption by up to 5.5- and 15.5-fold, respectively. This performance was mainly attributed to the increased specific surface area and pore volume, which facilitate dye diffusion and retention. The N<sub>2</sub> atmosphere limited carbon oxidation, promoting the development of mesoporous structures that efficiently adsorb both cationic and anionic dyes, underscoring the multifunctionality and sustainability of these materials for environmental applications.





