Literature DB >> 28970775

Engineered elastomer substrates for guided assembly of complex 3D mesostructures by spatially nonuniform compressive buckling.

Kewang Nan1, Haiwen Luan2, Zheng Yan3, Xin Ning3, Yiqi Wang3, Ao Wang4, Juntong Wang1, Mengdi Han5, Matthew Chang3, Kan Li2, Yutong Zhang1, Wen Huang6, Yeguang Xue2, Yonggang Huang7, Yihui Zhang8, John A Rogers9.   

Abstract

Approaches capable of creating three-dimensional (3D) mesostructures in advanced materials (device-grade semiconductors, electroactive polymers etc.) are of increasing interest in modern materials research. A versatile set of approaches exploits transformation of planar precursors into 3D architectures through the action of compressive forces associated with release of prestrain in a supporting elastomer substrate. Although a diverse set of 3D structures can be realized in nearly any class of material in this way, all previously reported demonstrations lack the ability to vary the degree of compression imparted to different regions of the 2D precursor, thus constraining the diversity of 3D geometries. This paper presents a set of ideas in materials and mechanics in which elastomeric substrates with engineered distributions of thickness yield desired strain distributions for targeted control over resultant 3D mesostructures geometries. This approach is compatible with a broad range of advanced functional materials from device-grade semiconductors to commercially available thin films, over length scales from tens of microns to several millimeters. A wide range of 3D structures can be produced in this way, some of which have direct relevance to applications in tunable optics and stretchable electronics.

Entities:  

Keywords:  compressive buckling; soft elastomers; strain engineering; three-dimensional assembly

Year:  2016        PMID: 28970775      PMCID: PMC5621772          DOI: 10.1002/adfm.201604281

Source DB:  PubMed          Journal:  Adv Funct Mater        ISSN: 1616-301X            Impact factor:   18.808


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10.  Morphable 3D mesostructures and microelectronic devices by multistable buckling mechanics.

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