<p>Silk fibroin (SF) membranes derived from <i>Bombyx mori</i> cocoons were fabricated using salt-induced phase separation and thermal annealing. A 5% silk fibroin solution was blended with sodium chloride (NaCl) and polyethylene glycol (PEG) to enhance porosity and structural integrity. Among the fabricated membranes, the SF/NaCl membrane exhibited superior surface porosity, enhanced hydrophilicity, and higher <i>β</i>-sheet crystallinity compared to both pure SF and SF/PEG membranes. These characteristics were confirmed through morphological and spectroscopic analyses. The SF/NaCl membrane was subsequently evaluated for its ability to remove cadmium (Cd<sup>2+</sup>), lead (Pb<sup>2+</sup>), and mercury (Hg<sup>2+</sup>) ions from contaminated water. Experimental results revealed that operational parameters such as pressure, pH, and temperature significantly influenced removal efficiency. Under optimal conditions, maximum removal efficiencies were 45.36% for Cd<sup>2+</sup>, 61.43% for Pb<sup>2+</sup>, and 86.87% for Hg<sup>2+</sup>. Corresponding maximum adsorption capacities reached 8.50&#xa0;mg/g (Cd<sup>2+</sup>), 6.42&#xa0;mg/g (Pb<sup>2+</sup>), and 41.14&#xa0;mg/g (Hg<sup>2+</sup>), under optimal conditions. These findings highlight the potential of the SF/NaCl membrane as a sustainable and efficient material for mercury removal in water treatment, owing to its excellent biocompatibility, biodegradability, and mechanical stability.</p>

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Production of Silk Fibroin Membrane for Heavy Metal Removal in Water

  • Suntorn Sudsandee,
  • Pannipha Dokmaingam,
  • Rachaneekorn Mingkhwan,
  • Nuttapohn Kiangkoo,
  • Suwalee Worakhunpiset,
  • Chien-Chieh Hu,
  • Sawanya Laohaprapanon,
  • Patharawadee Boonying

摘要

Silk fibroin (SF) membranes derived from Bombyx mori cocoons were fabricated using salt-induced phase separation and thermal annealing. A 5% silk fibroin solution was blended with sodium chloride (NaCl) and polyethylene glycol (PEG) to enhance porosity and structural integrity. Among the fabricated membranes, the SF/NaCl membrane exhibited superior surface porosity, enhanced hydrophilicity, and higher β-sheet crystallinity compared to both pure SF and SF/PEG membranes. These characteristics were confirmed through morphological and spectroscopic analyses. The SF/NaCl membrane was subsequently evaluated for its ability to remove cadmium (Cd2+), lead (Pb2+), and mercury (Hg2+) ions from contaminated water. Experimental results revealed that operational parameters such as pressure, pH, and temperature significantly influenced removal efficiency. Under optimal conditions, maximum removal efficiencies were 45.36% for Cd2+, 61.43% for Pb2+, and 86.87% for Hg2+. Corresponding maximum adsorption capacities reached 8.50 mg/g (Cd2+), 6.42 mg/g (Pb2+), and 41.14 mg/g (Hg2+), under optimal conditions. These findings highlight the potential of the SF/NaCl membrane as a sustainable and efficient material for mercury removal in water treatment, owing to its excellent biocompatibility, biodegradability, and mechanical stability.