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水凝胶和弹性体多材料打印中的化学耦合界面粘附

Chemically Coupled Interfacial Adhesion in Multimaterial Printing of Hydrogels and Elastomers.

作者信息

Tian Kevin, Suo Zhigang, Vlassak Joost J

机构信息

Harvard School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, United States.

Kavli Institute for Bionano Science and Technology, Harvard University, Cambridge, Massachusetts 02138, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Jul 8;12(27):31002-31009. doi: 10.1021/acsami.0c07468. Epub 2020 Jun 27.

DOI:10.1021/acsami.0c07468
PMID:32536152
Abstract

Functional devices that use hydrogels as ionic conductors and elastomers as dielectrics have the advantage of being soft, stretchable, transparent, and biocompatible, making them ideal for biomedical applications. These devices are typically fabricated by manual assembly. Techniques for the manufacturing of soft materials have generally not looked at integrating multiple dissimilar materials. Silane coupling agents have recently shown promise for creating strong bonds between hydrogels and elastomers but have yet to be used in the extrusion printing of complex devices that integrate both hydrogels and elastomers. Here, we demonstrate the viability of silane coupling agents in a system with the rheology and functional composition necessary for three-dimensional (3D) extrusion printing of hydrogel-elastomer materials, specifically polyacrylamide (PAAm) hydrogel and poly(dimethylsiloxane) (PDMS) hydrophobic elastomer. By introducing a charge-neutral surfactant in the PDMS and adjusting silane concentrations in the PAAm, cast material samples demonstrate strong adhesion. We were also able to achieve an interfacial toughness of up to Γ = 193 ± 6.3 J/m for a fully extrusion printed PAAm hydrogel-on-PDMS bilayer. This result demonstrates that an integration strategy based on silane coupling agents makes it possible for extrusion printing of a wide variety of hydrogel and silicone elastomers.

摘要

将水凝胶用作离子导体、弹性体用作电介质的功能性器件具有柔软、可拉伸、透明和生物相容性等优点,使其成为生物医学应用的理想选择。这些器件通常通过手工组装制造。制造软材料的技术一般尚未考虑整合多种不同材料。硅烷偶联剂最近已显示出在水凝胶和弹性体之间形成强键的潜力,但尚未用于整合水凝胶和弹性体的复杂器件的挤出打印。在此,我们展示了硅烷偶联剂在具有水凝胶 - 弹性体材料(特别是聚丙烯酰胺(PAAm)水凝胶和聚二甲基硅氧烷(PDMS)疏水弹性体)三维(3D)挤出打印所需流变学和功能组成的系统中的可行性。通过在PDMS中引入电荷中性表面活性剂并调整PAAm中的硅烷浓度,浇铸材料样品显示出强附着力。对于完全挤出打印的PAAm水凝胶在PDMS双层,我们还能够实现高达Γ = 193 ± 6.3 J/m的界面韧性。这一结果表明,基于硅烷偶联剂的整合策略使得多种水凝胶和硅氧烷弹性体的挤出打印成为可能。

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