Jiang Hanqing, Khang Dahl-Young, Song Jizhou, Sun Yugang, Huang Yonggang, Rogers John A
Department of Mechanical and Aerospace Engineering, Arizona State University, Tempe, AZ 85287, USA.
Proc Natl Acad Sci U S A. 2007 Oct 2;104(40):15607-12. doi: 10.1073/pnas.0702927104. Epub 2007 Sep 26.
We present detailed experimental and theoretical studies of the mechanics of thin buckled films on compliant substrates. In particular, accurate measurements of the wavelengths and amplitudes in structures that consist of thin, single-crystal ribbons of silicon covalently bonded to elastomeric substrates of poly(dimethylsiloxane) reveal responses that include wavelengths that change in an approximately linear fashion with strain in the substrate, for all values of strain above the critical strain for buckling. Theoretical reexamination of this system yields analytical models that can explain these and other experimental observations at a quantitative level. We show that the resulting mechanics has many features in common with that of a simple accordion bellows. These results have relevance to the many emerging applications of controlled buckling structures in stretchable electronics, microelectromechanical systems, thin-film metrology, optical devices, and others.
我们展示了对柔性基底上薄屈曲薄膜力学的详细实验和理论研究。具体而言,对由共价键合到聚二甲基硅氧烷弹性基底上的单晶硅薄带组成的结构中的波长和振幅进行的精确测量揭示了一些响应,包括对于高于屈曲临界应变的所有应变值,波长随基底应变以近似线性的方式变化。对该系统的理论重新审视产生了能够在定量水平上解释这些及其他实验观察结果的分析模型。我们表明,由此产生的力学特性与简单手风琴风箱有许多共同特征。这些结果与可控屈曲结构在可拉伸电子学、微机电系统、薄膜计量学、光学器件及其他领域的众多新兴应用相关。