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Novel Biological Hydrogel: Swelling Behaviors Study in Salt Solutions with Different Ionic Valence Number

机译:新型生物水凝胶:盐溶液中不同离子价数的溶胀行为研究

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摘要

In this paper, poly γ-glutamic acid/ε-polylysine (γ-PGA/ε-PL) hydrogels were successful prepared. The γ-PGA/ε-PL hydrogels could be used to remove Na+, Ca2+, and Cr3+ from aqueous solution and were characterized by scanning electron microscopy. The performance of hydrogels were estimated under different ionic concentration, temperature, and pH. The results showed that the ionic concentration and the pH significantly influenced the swelling capacity of γ-PGA/ε-PL hydrogels. The swelling capacities of γ-PGA/ε-PL hydrogels were decreased with the increase of the ionic concentration. However, the swelling capacity of the γ-PGA/ε-PL hydrogel was increased with the increase of the pH. The swelling kinetics indicated that γ-PGA/ε-PL hydrogels presented a more limited swelling degree in metal ion solutions with higher ionic valence numbers than in ion solutions with lower ionic valence numbers. However, the swelling kinetics of γ-PGA/ε-PL hydrogels showed that they proposed a satisfactory description in NaCl and CaCl2 solutions. The adsorption process was fitted with a pseudo-second-order rate equation model. Moreover, the desorption kinetics of γ-PGA/ε-PL hydrogels showed that they could release most of the adsorption ions. Considering the biocompatibility, biodegradability, and ionic-sensitive properties, we propose that these γ-PGA/ε-PL hydrogels have high potential to be used in environmental protection, medical treatment, and other related fields.
机译:本文成功制备了聚γ-谷氨酸/ε-聚赖氨酸(γ-PGA/ε-PL)水凝胶。 γ-PGA/ε-PL水凝胶可用于去除水溶液中的Na + ,Ca 2 + 和Cr 3 + 。通过扫描电子显微镜表征。在不同的离子浓度,温度和pH下,估计水凝胶的性能。结果表明,离子浓度和pH值显着影响γ-PGA/ε-PL水凝胶的溶胀能力。 γ-PGA/ε-PL水凝胶的溶胀能力随着离子浓度的增加而降低。但是,随着pH的升高,γ-PGA/ε-PL水凝胶的溶胀能力增加。溶胀动力学表明,与具有较低离子价数的离子溶液相比,γ-PGA/ε-PL水凝胶在具有较高离子价数的金属离子溶液中呈现出更有限的溶胀度。然而,γ-PGA/ε-PL水凝胶的溶胀动力学表明,他们在NaCl和CaCl2溶液中提出了令人满意的描述。吸附过程符合伪二级速率方程模型。此外,γ-PGA/ε-PL水凝胶的解吸动力学表明它们可以释放大部分吸附离子。考虑到生物相容性,生物降解性和离子敏感性,我们认为这些γ-PGA/ε-PL水凝胶具有很大的潜力,可用于环境保护,医疗和其他相关领域。

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