Literature DB >> 31315983

Harnessing the interface mechanics of hard films and soft substrates for 3D assembly by controlled buckling.

Yuan Liu1,2, Xueju Wang3, Yameng Xu4, Zhaoguo Xue1,2, Yi Zhang5, Xin Ning6, Xu Cheng1,2, Yeguang Xue7,8, Di Lu9, Qihui Zhang4, Fan Zhang1,2, Jianxing Liu1,2, Xiaogang Guo1,2, Keh-Chih Hwang1, Yonggang Huang10,7,8,9, John A Rogers10,7,8,9,11,12,13,14, Yihui Zhang15,2.   

Abstract

Techniques for forming sophisticated, 3D mesostructures in advanced, functional materials are of rapidly growing interest, owing to their potential uses across a broad range of fundamental and applied areas of application. Recently developed approaches to 3D assembly that rely on controlled buckling mechanics serve as versatile routes to 3D mesostructures in a diverse range of high-quality materials and length scales of relevance for 3D microsystems with unusual function and/or enhanced performance. Nonlinear buckling and delamination behaviors in materials that combine both weak and strong interfaces are foundational to the assembly process, but they can be difficult to control, especially for complex geometries. This paper presents theoretical and experimental studies of the fundamental aspects of adhesion and delamination in this context. By quantifying the effects of various essential parameters on these processes, we establish general design diagrams for different material systems, taking into account 4 dominant delamination states (wrinkling, partial delamination of the weak interface, full delamination of the weak interface, and partial delamination of the strong interface). These diagrams provide guidelines for the selection of engineering parameters that avoid interface-related failure, as demonstrated by a series of examples in 3D helical mesostructures and mesostructures that are reconfigurable based on the control of loading-path trajectories. Three-dimensional micromechanical resonators with frequencies that can be selected between 2 distinct values serve as demonstrative examples.

Keywords:  3-dimensional assembly; buckling; interface mechanics; reconfigurable 3D structures

Year:  2019        PMID: 31315983      PMCID: PMC6681730          DOI: 10.1073/pnas.1907732116

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  43 in total

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4.  Capillary origami: spontaneous wrapping of a droplet with an elastic sheet.

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5.  Omnidirectional printing of flexible, stretchable, and spanning silver microelectrodes.

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7.  Two- and three-dimensional folding of thin film single-crystalline silicon for photovoltaic power applications.

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Journal:  Proc Natl Acad Sci U S A       Date:  2009-11-23       Impact factor: 11.205

8.  Three-dimensional bicontinuous ultrafast-charge and -discharge bulk battery electrodes.

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9.  Ultraviolet-assisted direct-write fabrication of carbon nanotube/polymer nanocomposite microcoils.

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Journal:  Adv Mater       Date:  2021-05-13       Impact factor: 32.086

3.  Combination of Micro-Corrugation Process and Pre-Stretched Method for Highly Stretchable Vertical Wavy Structured Metal Interconnects.

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4.  Active-Sensing Epidermal Stretchable Bioelectronic Patch for Noninvasive, Conformal, and Wireless Tendon Monitoring.

Authors:  Sheng Shu; Jie An; Pengfei Chen; Di Liu; Ziming Wang; Chengyu Li; Shuangzhe Zhang; Yuan Liu; Jianzhe Luo; Lulu Zu; Wei Tang; Zhong Lin Wang
Journal:  Research (Wash D C)       Date:  2021-06-21

5.  Design and Simulation of Flexible Underwater Acoustic Sensor Based on 3D Buckling Structure.

Authors:  Guochang Liu; Wenping Cao; Guojun Zhang; Zhihao Wang; Haoyu Tan; Jinwei Miao; Zhaodong Li; Wendong Zhang; Renxin Wang
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6.  Compressive Buckling Fabrication of 3D Cell-Laden Microstructures.

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  6 in total

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