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基于多功能化纳米片诱导的主客体相互作用的凝胶化

Gelation Based on Host-Guest Interactions Induced by Multi-Functionalized Nanosheets.

作者信息

Ding Hao, Khan Sana T, Liu Jingjing, Sun Luyi

机构信息

Polymer Program, Institute of Materials Science, University of Connecticut, Storrs, CT 06269, USA.

Department of Chemical and Biomolecular Engineering, University of Connecticut, Storrs, CT 06269, USA.

出版信息

Gels. 2021 Aug 4;7(3):106. doi: 10.3390/gels7030106.

Abstract

Host-guest interaction, being reversible and stimuli-responsive, is ideal to be applied to the design of hydrogels. We created a gelation system based on the host-guest interactions between the adamantyl groups and β-cyclodextrin (β-CD) polymer. N,N,N-trimethyl-1-adamantylammonium hydroxide (TriMAA) cations were attached to the pre-exfoliated α-zirconium phosphate (α-ZrP) nanosheets by ionic bonding through a displacement reaction with the exfoliating agents. The exfoliated α-ZrP nanosheets with adamantyl groups directly or indirectly attached to the surface act as reversible high-functionality crosslinkers within the β-CD polymer. The gelation occurred at a host-to-guest ratio of 1:10 or 1:5 at room temperature within minutes. The agents used to exfoliate α-ZrP can tailor the surface of the resultant α-ZrP nanosheets and the ionic strength of the system, which directly affects the further gelation results. Plus, the exfoliating agent cations may generate a host-and-guest interaction with the β-CD polymer as well. This gelation process without covalent bonding formation should help fellow researchers to better understand the gelation system and host-guest interactions.

摘要

主客体相互作用具有可逆性和刺激响应性,非常适合应用于水凝胶的设计。我们基于金刚烷基与β-环糊精(β-CD)聚合物之间的主客体相互作用创建了一种凝胶化体系。通过与剥离剂的置换反应,氢氧化N,N,N-三甲基-1-金刚烷基铵(TriMAA)阳离子通过离子键连接到预先剥离的α-磷酸锆(α-ZrP)纳米片上。表面直接或间接连接有金刚烷基的剥离后的α-ZrP纳米片在β-CD聚合物中充当可逆的高功能性交联剂。在室温下,主客体比例为1:10或1:5时,几分钟内即可发生凝胶化。用于剥离α-ZrP的试剂可以调整所得α-ZrP纳米片的表面以及体系的离子强度,这直接影响进一步的凝胶化结果。此外,剥离剂阳离子也可能与β-CD聚合物产生主客体相互作用。这种不形成共价键的凝胶化过程应有助于研究人员更好地理解凝胶化体系和主客体相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fd6/8396050/f4eb9ba9741d/gels-07-00106-g001.jpg

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