Savina Irina N, Ingavle Ganesh C, Cundy Andrew B, Mikhalovsky Sergey V
School of Pharmacy and Biomolecular Sciences, University of Brighton, Huxley Building, Lewes Road, Brighton, BN2 4GJ, UK.
School of Environment and Technology, University of Brighton, Cockcroft Building, Lewes Road, Brighton, BN2 4GJ, UK.
Sci Rep. 2016 Feb 17;6:21154. doi: 10.1038/srep21154.
The development of bulk, three-dimensional (3D), macroporous polymers with high permeability, large surface area and large volume is highly desirable for a range of applications in the biomedical, biotechnological and environmental areas. The experimental techniques currently used are limited to the production of small size and volume cryogel material. In this work we propose a novel, versatile, simple and reproducible method for the synthesis of large volume porous polymer hydrogels by cryogelation. By controlling the freezing process of the reagent/polymer solution, large-scale 3D macroporous gels with wide interconnected pores (up to 200 μm in diameter) and large accessible surface area have been synthesized. For the first time, macroporous gels (of up to 400 ml bulk volume) with controlled porous structure were manufactured, with potential for scale up to much larger gel dimensions. This method can be used for production of novel 3D multi-component macroporous composite materials with a uniform distribution of embedded particles. The proposed method provides better control of freezing conditions and thus overcomes existing drawbacks limiting production of large gel-based devices and matrices. The proposed method could serve as a new design concept for functional 3D macroporous gels and composites preparation for biomedical, biotechnological and environmental applications.
开发具有高渗透性、大表面积和大体积的块状三维(3D)大孔聚合物,对于生物医学、生物技术和环境领域的一系列应用来说是非常必要的。目前使用的实验技术仅限于生产小尺寸和小体积的冷冻凝胶材料。在这项工作中,我们提出了一种新颖、通用、简单且可重复的方法,通过冷冻凝胶化来合成大体积多孔聚合物水凝胶。通过控制试剂/聚合物溶液的冷冻过程,已经合成出了具有广泛相互连通的孔隙(直径可达200μm)和大可达表面积的大规模3D大孔凝胶。首次制造出了具有可控多孔结构的大孔凝胶(总体积可达400ml),具有扩大到更大凝胶尺寸的潜力。该方法可用于生产具有均匀分布嵌入颗粒的新型3D多组分大孔复合材料。所提出的方法能更好地控制冷冻条件,从而克服了限制大型凝胶基装置和基质生产的现有缺点。所提出的方法可作为用于生物医学、生物技术和环境应用的功能性3D大孔凝胶和复合材料制备的新设计概念。