Covestro Deutschland AG, CAS-Global R&D, 51373 Leverkusen, Germany; Technical Medical Centre, and Faculty of Science and Technology, Department of Biomaterials Science and Technology, University of Twente, P.O. Box 217, 7500 AE Enschede, the Netherlands.
Covestro Deutschland AG, CAS-Global R&D, 51373 Leverkusen, Germany.
Acta Biomater. 2020 Mar 15;105:87-96. doi: 10.1016/j.actbio.2020.01.025. Epub 2020 Jan 21.
The development of tough hydrogels is an essential but challenging topic in biomaterials research that has received much attention over the past years. By the combinatorial synthesis of polymer networks and hydrogels based on prepolymers with different properties, new materials with widely varying characteristics and unexpected properties may be identified. In this paper, we report on the properties of combinatorial poly(urethane-isocyanurate) (PUI) type polymer networks that were synthesized by the trimerization of mixtures of NCO-functionalized poly(ethylene glycol) (PEG), poly(propylene gylcol) (PPG), poly(ε-caprolactone) (PCL) and poly(trimethylene carbonate) (PTMC) prepolymers in solution. The resulting polymer networks showed widely varying material properties. Combinatorial PUI networks containing at least one hydrophilic PEG component showed high water uptakes of >100 wt%. The resulting hydrogels demonstrated elastic moduli of up to 10.1 MPa, ultimate tensile strengths of up to 9.8 MPa, elongation at break values of up to 624.0% and toughness values of up to 53.4 MJ m. These values are exceptionally high and show that combinatorial PUI hydrogels are among the toughest hydrogels reported in the literature. Also, the simple two-step synthesis and wide range of suitable starting materials make this synthesis method more versatile and widely applicable than the existing methods for synthesizing tough hydrogels. An important finding of this work is that the presence of a hydrophobic network component significantly enhances the toughness and tensile strength of the combinatorial PUI hydrogels in the hydrated state. This enhancement is the largest when the hydrophobic network component is crystallizable in nature. In fact, the PUI hydrogels containing a crystallizable hydrophobic network component are shown to be semi-crystalline in the water-swollen state. Due to their high toughness values in the water-swollen state together with their water uptake values, elastic moduli and ultimate tensile strengths, the developed hydrogels are expected to be promising materials for biomedical coating- and adhesive applications, as well as for tissue-engineering. STATEMENT OF SIGNIFICANCE: The development of tough hydrogels is a challenging topic that has received much attention over the past years. At present, double network type hydrogels are considered state-of-the-art in the field, demonstrating toughness values of several tens of MJ m. However, in terms of ease and versatility of the synthesis method, the possibilities are limited using a double network approach. In this work, we present combinatorial poly(urethane-isocyanurate) type polymer networks and hydrogels, synthesized by the trimerization of mixtures of NCO-functionalized prepolymers. The resulting hydrogels demonstrate exceptionally high toughness values of up to 53 MJ m, while the synthesis method is versatile and widely applicable. This new class of hydrogels is therefore considered highly promising in the future development of load-bearing biomaterials.
通过组合具有不同性质的聚合物网络和水凝胶的预聚物,可以识别具有广泛变化的特性和意想不到的特性的新材料。在本文中,我们报告了通过混合物的三聚反应合成的组合型聚(异氰脲酸酯)(PUI)类型聚合物网络的性质,混合物中的 NCO-官能化聚(乙二醇)(PEG)、聚(丙二醇)(PPG)、聚(ε-己内酯)(PCL)和聚(三亚甲基碳酸酯)(PTMC)预聚物在溶液中。所得聚合物网络表现出广泛变化的材料性能。含有至少一种亲水性 PEG 组分的组合型 PUI 网络具有>100wt%的高吸水率。所得水凝胶表现出高达 10.1MPa 的弹性模量、高达 9.8MPa 的极限拉伸强度、高达 624.0%的断裂伸长率和高达 53.4MJ m 的韧性值。这些值非常高,表明组合型 PUI 水凝胶是文献中报道的最坚韧的水凝胶之一。此外,简单的两步合成和广泛的合适起始材料使这种合成方法比现有合成坚韧水凝胶的方法更通用和广泛适用。这项工作的一个重要发现是,疏水性网络成分的存在显著提高了组合型 PUI 水凝胶在水合状态下的韧性和拉伸强度。当疏水性网络成分本质上可结晶时,增强作用最大。事实上,含有可结晶疏水性网络成分的 PUI 水凝胶在水合状态下显示出半结晶状态。由于其在水合状态下的高韧性值以及它们的吸水率、弹性模量和极限拉伸强度,所开发的水凝胶有望成为生物医学涂层和粘合剂应用以及组织工程的有前途的材料。
坚韧水凝胶的开发是一个具有挑战性的课题,近年来受到了广泛关注。目前,双网络型水凝胶被认为是该领域的最新技术,其韧性值为几十兆焦耳每立方米。然而,就合成方法的简便性和通用性而言,使用双网络方法的可能性有限。在这项工作中,我们提出了通过混合物的三聚反应合成的组合型聚(异氰脲酸酯)型聚合物网络和水凝胶,混合物中的 NCO-官能化预聚物。所得水凝胶表现出高达 53MJ m 的异常高韧性值,而合成方法具有通用性和广泛适用性。因此,这种新型水凝胶在未来承重生物材料的发展中被认为具有很高的应用前景。