<p>This study evaluated the effect of corn starch's amylose/amylopectin content on the development of crosslinked hydrogels with trisodium citrate for the sorption of potentially toxic metals (PTMs). The results, obtained through a robust methodology, indicated a clear relation between the amylose content and crosslinking degree, thereby impacting the properties of the hydrogels. The hydrogel with high amylose (70 wt.%) and low amylopectin (30 wt.%) content (Hylon VII®) demonstrated a high crosslinking degree (0.297) and good thermal stability and water absorption (72.71%), with a semicrystalline structure. The hydrogel with low amylose (1.8 wt.%) and high amylopectin (98.2 wt.%) content (Amisol 4000®), on the other hand, showed the lowest degree of crosslinking (0.109), water absorption (49.77%), and high solubility (46%), which makes its applicability difficult due to its low stability in aqueous media. The influence of amylose (28 wt.%) and amylopectin (72 wt.%) content indicated that the Amisol 3408® hydrogel showed valuable properties, presenting a higher potential for PTMs sorption with the following affinity order: Cu<sup>2+</sup> (68.62%) &gt; Cd<sup>2+</sup> (63.13%) &gt; Mn<sup>2+</sup> (37.36%) &gt; Zn<sup>2+</sup> (26.61%) &gt; Cr<sup>6+</sup> (16.80%). Besides, the possible sorption mechanism was ion exchange between Cu<sup>2+</sup>/Cd<sup>2+</sup>/Mn<sup>2+</sup>/Zn<sup>2+</sup> and H<sup>+</sup> in the&#xa0;hydrogels. Thus, starch-based hydrogel is an alternative&#xa0;sorbent to remove and recover PTMs from wastewater.</p>

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Enhancing Corn Starch Hydrogels for Effective Sorption of Potentially Toxic Metals: The Role of Amylose and Amylopectin Content

  • Talles B. da Costa,
  • Paulo H. Camani,
  • Rafaela R. Ferreira,
  • Rennan F. S. Barbosa,
  • Derval dos S. Rosa

摘要

This study evaluated the effect of corn starch's amylose/amylopectin content on the development of crosslinked hydrogels with trisodium citrate for the sorption of potentially toxic metals (PTMs). The results, obtained through a robust methodology, indicated a clear relation between the amylose content and crosslinking degree, thereby impacting the properties of the hydrogels. The hydrogel with high amylose (70 wt.%) and low amylopectin (30 wt.%) content (Hylon VII®) demonstrated a high crosslinking degree (0.297) and good thermal stability and water absorption (72.71%), with a semicrystalline structure. The hydrogel with low amylose (1.8 wt.%) and high amylopectin (98.2 wt.%) content (Amisol 4000®), on the other hand, showed the lowest degree of crosslinking (0.109), water absorption (49.77%), and high solubility (46%), which makes its applicability difficult due to its low stability in aqueous media. The influence of amylose (28 wt.%) and amylopectin (72 wt.%) content indicated that the Amisol 3408® hydrogel showed valuable properties, presenting a higher potential for PTMs sorption with the following affinity order: Cu2+ (68.62%) > Cd2+ (63.13%) > Mn2+ (37.36%) > Zn2+ (26.61%) > Cr6+ (16.80%). Besides, the possible sorption mechanism was ion exchange between Cu2+/Cd2+/Mn2+/Zn2+ and H+ in the hydrogels. Thus, starch-based hydrogel is an alternative sorbent to remove and recover PTMs from wastewater.