形状可编程和可修复的材料和设备,使用热和光响应玻璃体

Q1 Materials Science Multifunctional Materials Pub Date : 2020-09-15 DOI:10.1088/2399-7532/abbdc1
Xiao Kuang, Quanyi Mu, D. J. Roach, H. Qi
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引用次数: 17

摘要

形状变形材料已经被广泛研究,以控制复杂的三维(3D)结构和器件的形成,用于广泛的应用。各种方法,包括预应变双层复合材料的屈曲、形状记忆聚合物的刺激响应性形状移动和水凝胶,以前已经被用于将2D片材转变为3D结构和装置。然而,锁定在这些形状变化结构中的残余应力将驱使它们在去除外部刺激或约束后逐渐恢复到其原始布局。在这里,我们报道了一种具有热可逆和光可逆二硫键的多刺激响应玻璃化物(间玻璃化物),作为用于功能3D设备的形状可编程和可修复材料。通过改变二硫化物含量和催化剂负载量来调节玻璃化物的力学性能和热机械性能。高温和光照可诱导有效的应力松弛和网络重排,从而实现材料形状编程和愈合。我们证明了印刷柔性智能电子产品是使用间硫酸酯作为基体,印刷导电银纳米颗粒作为导线制造的。印刷电子器件具有良好的机电性能、强界面结合以及热响应和光响应形状编程。此外,间玻璃化物可以在热和光损坏时愈合,这部分恢复了银的导电性,并保护电子器件免受进一步损坏。用于功能性3D设备的多刺激响应聚合物和打印电子产品的融合有可能在智能和变形电子、生物医学设备和4D打印中找到广泛的应用。
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Shape-programmable and healable materials and devices using thermo- and photo-responsive vitrimer
Shape morphing materials have been extensively studied to control the formation of sophisticated three-dimensional (3D) structures and devices for a broad range of applications. Various methods, including the buckling of pre-strained bilayer composites, stimuli-responsive shape-shifting of shape memory polymers, and hydrogels, have been previously employed to transform 2D sheets to 3D structures and devices. However, the residual stress locked in these shape-shifting structures will drive them to gradually revert to their original layouts upon the removal of external stimuli or constrains. Here, we report a multistimuli-responsive vitrimer (m-vitrimer) bearing thermal- and photo-reversible disulfide bonds as shape programmable and healable materials for functional 3D devices. The mechanical properties and thermomechanical properties of vitrimer were tuned by altering the disulfide content and catalyst loading. Heat and light exposure induces effective stress relaxation and network rearrangement, enabling material shape programming and healing. We demonstrate that printed flexible smart electronics are fabricated using the m-vitrimer as a matrix and printed conductive silver nanoparticles as conductive wire. The printed electronics possess good electro-mechanical properties, strong interfacial bonding, and thermal- and photo-responsive shape programming. Moreover, the m-vitrimer can be healed upon damage by heat and light, which partially restores silver conductivity and protect the electronics from further damage. The converging of multi-stimuli-responsive polymers and printed electronics for functional 3D devices have the potential of finding broad applications in smart and morphing electronics, biomedical devices, and 4D printing.
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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