School of Engineering, Deakin University, Geelong, Victoria, 3216, Australia.
Department of Chemical Engineering, Isfahan University of Technology, Isfahan, 84156-83111, Iran.
Macromol Rapid Commun. 2020 Dec;41(23):e2000439. doi: 10.1002/marc.202000439. Epub 2020 Nov 10.
Nature has often been the main source of inspiration for designing smart functional materials. As an example, mussels can attach to almost any wet surfaces, for example, wood, rocks, metal, etc., due to the presence of catechols containing amino acid 3,4-dihydroxyphenyl-l-alanine (DOPA). Fabrication of mussel-inspired hydrogels using dynamic catecholato-metal coordination bonds has recently been in the limelight because of the hydrogels' ease of gelation, interesting self-healing, self-recovery, adhesiveness, and pH-responsiveness, as well as shear-thinning and mechanical properties. Mussel inspired hydrogels take advantage of catechols, for example, DOPA in the blue mussel, to undergo catecholatometal gelation through coordination chemistry. This review explores the latest developments in the fabrication of such hydrogels using catecholato-metal coordination bonds, and discusses their potential applications in sensors, flexible electronics, tissue engineering, and wound dressing. Moreover, current challenges and prospects of such hydrogels are discussed. The main focus of this paper is on providing a deeper understanding of this growing field in terms of chemistry, physics, and associated properties.
大自然通常是设计智能功能材料的主要灵感来源。例如,贻贝由于含有氨基酸 3,4-二羟基苯丙氨酸 (DOPA) 的儿茶酚的存在,可以附着在几乎任何潮湿的表面上,例如木材、岩石、金属等。最近,使用动态儿茶酚金属配位键制造贻贝启发的水凝胶受到关注,因为这些水凝胶具有易于凝胶化、有趣的自修复、自恢复、粘附性和 pH 响应性以及剪切稀化和机械性能。贻贝启发的水凝胶利用儿茶酚,例如贻贝中的 DOPA,通过配位化学进行儿茶酚金属凝胶化。本综述探讨了使用儿茶酚金属配位键制造此类水凝胶的最新进展,并讨论了它们在传感器、柔性电子、组织工程和伤口敷料中的潜在应用。此外,还讨论了此类水凝胶的当前挑战和前景。本文的主要重点是从化学、物理和相关特性方面提供对这一快速发展领域的更深入了解。