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一种通用的基于生物灵感的、基于金属的协同交联策略,用于制备机械增强材料。

A General Bioinspired, Metals-Based Synergic Cross-Linking Strategy toward Mechanically Enhanced Materials.

机构信息

Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry and Environment, Beihang University , Beijing 100191, People's Republic of China.

出版信息

ACS Nano. 2017 Mar 28;11(3):2835-2845. doi: 10.1021/acsnano.6b07932. Epub 2017 Mar 1.

Abstract

Creating lightweight engineering materials combining high strength and great toughness remains a significant challenge. Despite possessing-enhanced strength and stiffness, bioinspired/polymeric materials usually suffer from clearly reduced extensibility and toughness when compared to corresponding bulk polymer materials. Herein, inspired by tiny amounts of various inorganic impurities for mechanical improvement in natural materials, we present a versatile and effective metal ion (M)-based synergic cross-linking (MSC) strategy incorporating eight types of metal ions into material bulks that can drastically enhance the tensile strength (∼24.1-70.8%), toughness (∼18.6-110.1%), modulus (∼21.6-66.7%), and hardness (∼6.4-176.5%) of multiple types of pristine materials (from hydrophilic to hydrophobic and from unary to binary). More importantly, we also explore the primarily elastic-plastic deformation mechanism and brittle fracture behavior (indentation strain of >5%) of the synergic cross-linked graphene oxide (Syn-GO) paper by means of in situ nanoindentation SEM. The MSC strategy for mechanically enhanced integration can be readily attributed to the formation of the complicated metals-based cross-linking/complex networks in the interfaces and intermolecules between functional groups of materials and various metal ions that give rise to efficient energy dissipation. This work suggests a promising MSC strategy for designing advanced materials with outstanding mechanical properties by adding low amounts (<1.0 wt %) of synergic metal ions serving as synergic ion-bonding cross-linkers.

摘要

创造高强度和高韧性的轻质工程材料仍然是一个重大挑战。尽管仿生/聚合物材料具有增强的强度和刚性,但与相应的块状聚合物材料相比,它们通常具有明显降低的延展性和韧性。受自然界中少量各种无机杂质对材料机械性能改善的启发,我们提出了一种通用有效的金属离子(M)协同交联(MSC)策略,将八种金属离子掺入到材料中,可显著提高多种原始材料的拉伸强度(24.1-70.8%)、韧性(18.6-110.1%)、模量(21.6-66.7%)和硬度(6.4-176.5%)(从亲水到疏水,从一元到二元)。更重要的是,我们还通过原位纳米压痕 SEM 探索了协同交联氧化石墨烯(Syn-GO)纸的主要弹塑性变形机制和脆性断裂行为(压痕应变>5%)。机械增强集成的 MSC 策略可归因于材料和各种金属离子的官能团之间界面和分子间复杂的金属基交联/复杂网络的形成,这导致了有效的能量耗散。这项工作提出了一种有前途的 MSC 策略,通过添加少量(<1.0 wt %)协同金属离子作为协同离子键交联剂,设计具有优异机械性能的先进材料。

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