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结构型大孔水凝胶:进展、挑战与机遇。

Structured Macroporous Hydrogels: Progress, Challenges, and Opportunities.

机构信息

Department of Chemical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada.

出版信息

Adv Healthc Mater. 2018 Jan;7(1). doi: 10.1002/adhm.201700927. Epub 2017 Dec 1.

Abstract

Structured macroporous hydrogels that have controllable porosities on both the nanoscale and the microscale offer both the swelling and interfacial properties of bulk hydrogels as well as the transport properties of "hard" macroporous materials. While a variety of techniques such as solvent casting, freeze drying, gas foaming, and phase separation have been developed to fabricate structured macroporous hydrogels, the typically weak mechanics and isotropic pore structures achieved as well as the required use of solvent/additives in the preparation process all limit the potential applications of these materials, particularly in biomedical contexts. This review highlights recent developments in the field of structured macroporous hydrogels aiming to increase network strength, create anisotropy and directionality within the networks, and utilize solvent-free or additive-free fabrication methods. Such functional materials are well suited for not only biomedical applications like tissue engineering and drug delivery but also selective filtration, environmental sorption, and the physical templating of secondary networks.

摘要

具有纳米级和微级可控孔隙率的结构化大孔水凝胶既具有体相水凝胶的溶胀和界面特性,又具有“硬”大孔材料的传输特性。虽然已经开发了各种技术来制备结构化大孔水凝胶,例如溶剂浇铸、冷冻干燥、气体发泡和相分离,但通常获得的力学性能较弱和各向同性的孔结构以及在制备过程中需要使用溶剂/添加剂都限制了这些材料的潜在应用,特别是在生物医学领域。本综述重点介绍了结构化大孔水凝胶领域的最新进展,旨在提高网络强度、在网络内产生各向异性和方向性,并利用无溶剂或无添加剂的制造方法。这些功能性材料不仅非常适合生物医学应用,如组织工程和药物输送,还适合选择性过滤、环境吸附以及二级网络的物理模板。

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