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使用生物衍生的环戊酮制备用于高分辨率定制水凝胶结构的3D打印有机凝胶

3D Printing Organogels with Bioderived Cyrene for High-Resolution Customized Hydrogel Structures.

作者信息

Ramirez Aline B, Bauman Lukas A, Zhao Boxin

机构信息

Surface Science and Bio-nanomaterials Laboratory, Department of Chemical Engineering, University of Waterloo, Waterloo, Ontario N2L 3G1 Canada.

出版信息

Langmuir. 2025 Jan 14;41(1):646-653. doi: 10.1021/acs.langmuir.4c03887. Epub 2025 Jan 4.

DOI:10.1021/acs.langmuir.4c03887
PMID:39754590
Abstract

3D printing techniques are increasingly being explored to produce hydrogels, versatile materials with a wide range of applications. While photopolymerization-based 3D printing can produce customized hydrogel shapes and intricate structures, its reliance on rigid printing conditions limits material properties compared to those of extrusion printing. To address this limitation, this study employed an alternative approach by printing an organogel precursor using vat polymerization with organic solvents instead of water, followed by solvent exchange after printing to create the final hydrogel material. Using mask stereolithography (mSLA), we evaluated the effects of solvent choice on a novel and recently developed 3D-printed supramolecular hydrogel, cross-linked with quaternized chitosan/acrylate salt. In this study, we compared the conventional solvent dimethyl sulfoxide (DMSO) with the bioderived solvent Cyrene. Our findings reveal that hydrogels produced with Cyrene-based 3D printing exhibit weaker strength but high swelling capacity and elasticity, resilience to cyclic loading, and the ability to produce detailed and accurate 3D-printed objects. These results provide insights into the solvent-dependent mechanical and physical characteristics of 3D-printed hydrogels and underscore the potential of Cyrene as a sustainable alternative for polymeric synthesis.

摘要

3D打印技术正越来越多地被用于生产水凝胶,水凝胶是一种具有广泛应用的多功能材料。虽然基于光聚合的3D打印可以生产定制的水凝胶形状和复杂结构,但与挤出打印相比,其对严格打印条件的依赖限制了材料性能。为解决这一限制,本研究采用了另一种方法,即使用有机溶剂而非水通过桶聚合法打印有机凝胶前体,然后在打印后进行溶剂交换以制备最终的水凝胶材料。使用掩膜立体光刻(mSLA),我们评估了溶剂选择对一种新型且最近开发的与季铵化壳聚糖/丙烯酸盐交联的3D打印超分子水凝胶的影响。在本研究中,我们将传统溶剂二甲基亚砜(DMSO)与生物衍生溶剂环戊酮进行了比较。我们的研究结果表明,基于环戊酮的3D打印生产的水凝胶强度较弱,但具有高溶胀能力和弹性、对循环加载的恢复力以及生产详细且精确的3D打印物体的能力。这些结果为3D打印水凝胶的溶剂依赖性机械和物理特性提供了见解,并强调了环戊酮作为聚合物合成可持续替代物的潜力。

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