<p>Industrial pigment wastewater poses a serious threat to ecosystems and human health. This study aimed to develop efficient and recyclable adsorbents for the treatment of such wastewater. Initially, a magnetic carrier, W@Fe<sub>3</sub>O<sub>4</sub>, was synthesized by loading Fe<sub>3</sub>O<sub>4</sub> onto wood fibers (W) via co-precipitation. Subsequently, three types of acrylic-modified magnetic wood fiber adsorbents (W@Fe<sub>3</sub>O<sub>4</sub>-g-pGMA, W@Fe<sub>3</sub>O<sub>4</sub>-g-pAA, W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pHEMA) were fabricated by grafting poly(glycidyl methacrylate) (pGMA), poly(acrylic acid) (pAA), and poly(2-hydroxyethyl methacrylate) (pHEMA), respectively, onto the W@Fe<sub>3</sub>O<sub>4</sub> surface through surface-initiated polymerization. The successful preparation of the materials was confirmed by FTIR, TG, and SEM. Adsorption experiments demonstrated a significant enhancement in the adsorption performance of all three modified materials for Methylene Blue (MB) and Rhodamine B (Rh B). The optimal adsorption conditions were identified as follows: adsorbent dosage of 10&#xa0;mg, initial MB concentration of 20&#xa0;mg/L, initial Rh B concentration of 30&#xa0;mg/L, pH 7, and temperature of 35&#xa0;°C. Under these optimal conditions, the removal efficiency of MB by W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pGMA reached 83.47%, with an adsorption capacity of 16.15 mg&#xa0;g<sup>−1</sup>, while the removal efficiency of Rh B by W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pAA reached 90.08%, with an adsorption capacity of 17.95 mg&#xa0;g<sup>−1</sup>. The adsorption kinetics were best described by the pseudo-second-order model. Isotherm analysis indicated that the adsorption of MB onto W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pGMA was better fitted by the Langmuir model, whereas the adsorption of Rh B onto W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pAA was more consistent with the Temkin model, suggesting a predominantly chemisorption mechanism. After five consecutive adsorption-desorption cycles, the removal rates for MB by W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pGMA and for Rh B by W@Fe<sub>3</sub>O<sub>4</sub>-<i>g</i>-pAA remained above 70%, indicating excellent recyclability and stability of the materials. This study provides valuable insights for the design of functional adsorbents and their potential application in the advanced treatment of pigment-containing wastewater.</p>

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Magnetically Modified Wood Fiber with Acrylic Polymers as an Efficient Adsorbent for Removing Methylene Blue and Rhodamine B

  • Chengmin Hou,
  • Chuangchuang Ren,
  • Yuan Bai

摘要

Industrial pigment wastewater poses a serious threat to ecosystems and human health. This study aimed to develop efficient and recyclable adsorbents for the treatment of such wastewater. Initially, a magnetic carrier, W@Fe3O4, was synthesized by loading Fe3O4 onto wood fibers (W) via co-precipitation. Subsequently, three types of acrylic-modified magnetic wood fiber adsorbents (W@Fe3O4-g-pGMA, W@Fe3O4-g-pAA, W@Fe3O4-g-pHEMA) were fabricated by grafting poly(glycidyl methacrylate) (pGMA), poly(acrylic acid) (pAA), and poly(2-hydroxyethyl methacrylate) (pHEMA), respectively, onto the W@Fe3O4 surface through surface-initiated polymerization. The successful preparation of the materials was confirmed by FTIR, TG, and SEM. Adsorption experiments demonstrated a significant enhancement in the adsorption performance of all three modified materials for Methylene Blue (MB) and Rhodamine B (Rh B). The optimal adsorption conditions were identified as follows: adsorbent dosage of 10 mg, initial MB concentration of 20 mg/L, initial Rh B concentration of 30 mg/L, pH 7, and temperature of 35 °C. Under these optimal conditions, the removal efficiency of MB by W@Fe3O4-g-pGMA reached 83.47%, with an adsorption capacity of 16.15 mg g−1, while the removal efficiency of Rh B by W@Fe3O4-g-pAA reached 90.08%, with an adsorption capacity of 17.95 mg g−1. The adsorption kinetics were best described by the pseudo-second-order model. Isotherm analysis indicated that the adsorption of MB onto W@Fe3O4-g-pGMA was better fitted by the Langmuir model, whereas the adsorption of Rh B onto W@Fe3O4-g-pAA was more consistent with the Temkin model, suggesting a predominantly chemisorption mechanism. After five consecutive adsorption-desorption cycles, the removal rates for MB by W@Fe3O4-g-pGMA and for Rh B by W@Fe3O4-g-pAA remained above 70%, indicating excellent recyclability and stability of the materials. This study provides valuable insights for the design of functional adsorbents and their potential application in the advanced treatment of pigment-containing wastewater.