Picchioni Francesco, Muljana Henky
Department of Chemical Engineering, Engineering and Technology Institute Groningen (ENTEG), University of Groningen, Nijenborgh 4, 9747 AG Groningen, The Netherlands.
Department of Chemical Engineering, Parahyangan Catholic University, Ciumbuleuit 94, Bandung 40141, West Java, Indonesia.
Gels. 2018 Mar 8;4(1):21. doi: 10.3390/gels4010021.
Hydrogels based on reversible covalent bonds represent an attractive topic for research at both academic and industrial level. While the concept of reversible covalent bonds dates back a few decades, novel developments continue to appear in the general research area of gels and especially hydrogels. The reversible character of the bonds, when translated at the general level of the polymeric network, allows reversible interaction with substrates as well as responsiveness to variety of external stimuli (e.g., self-healing). These represent crucial characteristics in applications such as drug delivery and, more generally, in the biomedical world. Furthermore, the several possible choices that can be made in terms of reversible interactions generate an almost endless number of possibilities in terms of final product structure and properties. In the present work, we aim at reviewing the latest developments in this field (i.e., the last five years) by focusing on the chemistry of the systems at hand. As such, this should allow molecular designers to develop a toolbox for the synthesis of new systems with tailored properties for a given application.
基于可逆共价键的水凝胶是学术和工业层面都颇具吸引力的研究课题。虽然可逆共价键的概念可以追溯到几十年前,但在凝胶尤其是水凝胶的一般研究领域中,新的进展仍不断涌现。当在聚合物网络的一般层面上体现时,键的可逆特性允许与底物进行可逆相互作用,并对各种外部刺激(如自我修复)产生响应。这些特性在药物递送等应用中,以及更广泛地在生物医学领域中都至关重要。此外,在可逆相互作用方面可以做出的多种选择,在最终产品的结构和性能方面产生了几乎无穷无尽的可能性。在本工作中,我们旨在通过关注现有系统的化学性质来综述该领域(即过去五年)的最新进展。这样一来,这应该能让分子设计师开发出一个工具箱,用于合成具有针对特定应用定制特性的新系统。