Department of Chemical & Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina 27695, United States.
Department of Materials Science & Engineering, North Carolina State University, Raleigh, North Carolina 27695, United States.
Langmuir. 2021 Sep 28;37(38):11242-11250. doi: 10.1021/acs.langmuir.1c01585. Epub 2021 Sep 14.
The development of new materials emphasizes greater use of sustainable and eco-friendly resources, including those that take advantage of the unique properties of nanopolysaccharides. Advances in this area, however, necessarily require a thorough understanding of interactions with water. Our contribution to this important topic pertains to the swelling behavior of partially deacetylated nanochitin (NCh), which has been studied here by quartz crystal microgravimetry. Ultrathin films of NCh supported on gold-coated resonators have been equilibrated in aqueous electrolyte solutions (containing NaF, NaCl, NaBr, NaNO, NaSO, NaSO, or NaPO) at different ionic strengths. As anticipated, NCh displays contrasting swelling/deswelling responses, depending on the ionic affinities and valences of the counterions. The extent of water uptake induced by halide anions, for instance, follows a modified Hofmeister series with F producing the highest swelling. In marked contrast, Cl induces film dehydration. We conclude that larger anions promote deswelling such that water losses increase with increasing anion valence. Results such as the ones reported here are critical to ongoing efforts designed to dry chitin nanomaterials and develop bio-based and sustainable materials, including particles, films, coatings, and other nanostructured assemblies, for various devices and applications.
新材料的开发强调更多地利用可持续和环保资源,包括利用纳米多糖独特性质的资源。然而,这一领域的进展必然需要对与水的相互作用有透彻的了解。我们对这个重要主题的贡献涉及部分脱乙酰基纳米甲壳素 (NCh) 的溶胀行为,这里通过石英晶体微量天平对其进行了研究。在不同离子强度下,将负载在镀金谐振器上的超薄 NCh 薄膜平衡在含有 NaF、NaCl、NaBr、NaNO、NaSO、NaSO 或 NaPO 的水性电解质溶液中。正如预期的那样,NCh 根据抗衡离子的离子亲和力和价态表现出截然不同的溶胀/收缩响应。例如,卤化物阴离子引起的水吸收程度遵循改良的 Hofmeister 序列,其中 F 产生最大的溶胀。相比之下,Cl 诱导薄膜脱水。我们得出结论,较大的阴离子促进收缩,从而随着阴离子价态的增加,水损失增加。这里报道的结果对正在进行的努力至关重要,旨在干燥壳聚糖纳米材料并开发基于生物的可持续材料,包括用于各种设备和应用的颗粒、薄膜、涂层和其他纳米结构组件。