Suppr超能文献

有机-无机共价-离子分子用于弹性陶瓷塑料。

Organic-inorganic covalent-ionic molecules for elastic ceramic plastic.

机构信息

Department of Chemistry, Zhejiang University, Hangzhou, China.

State Key Laboratory of Military Stomatology, The Fourth Military Medical University, Xi'an, China.

出版信息

Nature. 2023 Jul;619(7969):293-299. doi: 10.1038/s41586-023-06117-1. Epub 2023 Jun 7.

Abstract

Although organic-inorganic hybrid materials have played indispensable roles as mechanical, optical, electronic and biomedical materials, isolated organic-inorganic hybrid molecules (at present limited to covalent compounds) are seldom used to prepare hybrid materials, owing to the distinct behaviours of organic covalent bonds and inorganic ionic bonds in molecular construction. Here we integrate typical covalent and ionic bonds within one molecule to create an organic-inorganic hybrid molecule, which can be used for bottom-up syntheses of hybrid materials. A combination of the organic covalent thioctic acid (TA) and the inorganic ionic calcium carbonate oligomer (CCO) through an acid-base reaction provides a TA-CCO hybrid molecule with the representative molecular formula TACa(CaCO). Its dual reactivity involving copolymerization of the organic TA segment and inorganic CCO segment generates the respective covalent and ionic networks. The two networks are interconnected through TA-CCO complexes to form a covalent-ionic bicontinuous structure within the resulting hybrid material, poly(TA-CCO), which unifies paradoxical mechanical properties. The reversible binding of Ca-CO bonds in the ionic network and S-S bonds in the covalent network ensures material reprocessability with plastic-like mouldability while preserving thermal stability. The coexistence of ceramic-like, rubber-like and plastic-like behaviours within poly(TA-CCO) goes beyond current classifications of materials to generate an 'elastic ceramic plastic'. The bottom-up creation of organic-inorganic hybrid molecules provides a feasible pathway for the molecular engineering of hybrid materials, thereby supplementing the classical methodology used for the manufacture of organic-inorganic hybrid materials.

摘要

尽管有机-无机杂化材料在机械、光学、电子和生物医学材料方面发挥了不可或缺的作用,但由于有机共价键和无机离子键在分子构建中的明显行为,孤立的有机-无机杂化分子(目前仅限于共价化合物)很少被用于制备杂化材料。在这里,我们将典型的共价键和离子键整合到一个分子中,从而创造出一种可用于自下而上合成杂化材料的有机-无机杂化分子。通过酸碱反应将有机硫辛酸 (TA) 和无机碳酸钙低聚物 (CCO) 结合在一起,形成了 TA-CCO 杂化分子,其具有代表性的分子式为 TACa(CaCO)。它的双重反应性涉及有机 TA 段和无机 CCO 段的共聚,生成各自的共价和离子网络。两个网络通过 TA-CCO 配合物相互连接,在所得杂化材料聚 (TA-CCO) 中形成共价-离子双连续结构,统一了矛盾的机械性能。离子网络中 Ca-CO 键和共价网络中 S-S 键的可逆结合确保了材料的可再加工性,具有类似塑料的可模塑性,同时保持热稳定性。聚 (TA-CCO) 中陶瓷状、橡胶状和塑料状行为的共存超越了当前材料的分类,产生了“弹性陶瓷塑料”。有机-无机杂化分子的自下而上创造为杂化材料的分子工程提供了可行的途径,从而补充了用于制造有机-无机杂化材料的经典方法。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验