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Materials and noncoplanar mesh designs for integrated circuits with linear elastic responses to extreme mechanical deformations.


ABSTRACT: Electronic systems that offer elastic mechanical responses to high-strain deformations are of growing interest because of their ability to enable new biomedical devices and other applications whose requirements are impossible to satisfy with conventional wafer-based technologies or even with those that offer simple bendability. This article introduces materials and mechanical design strategies for classes of electronic circuits that offer extremely high stretchability, enabling them to accommodate even demanding configurations such as corkscrew twists with tight pitch (e.g., 90 degrees in approximately 1 cm) and linear stretching to "rubber-band" levels of strain (e.g., up to approximately 140%). The use of single crystalline silicon nanomaterials for the semiconductor provides performance in stretchable complementary metal-oxide-semiconductor (CMOS) integrated circuits approaching that of conventional devices with comparable feature sizes formed on silicon wafers. Comprehensive theoretical studies of the mechanics reveal the way in which the structural designs enable these extreme mechanical properties without fracturing the intrinsically brittle active materials or even inducing significant changes in their electrical properties. The results, as demonstrated through electrical measurements of arrays of transistors, CMOS inverters, ring oscillators, and differential amplifiers, suggest a valuable route to high-performance stretchable electronics.

SUBMITTER: Kim DH 

PROVIDER: S-EPMC2584145 | biostudies-literature | 2008 Dec

REPOSITORIES: biostudies-literature

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Materials and noncoplanar mesh designs for integrated circuits with linear elastic responses to extreme mechanical deformations.

Kim Dae-Hyeong DH   Song Jizhou J   Choi Won Mook WM   Kim Hoon-Sik HS   Kim Rak-Hwan RH   Liu Zhuangjian Z   Huang Yonggang Y YY   Hwang Keh-Chih KC   Zhang Yong-wei YW   Rogers John A JA  

Proceedings of the National Academy of Sciences of the United States of America 20081117 48


Electronic systems that offer elastic mechanical responses to high-strain deformations are of growing interest because of their ability to enable new biomedical devices and other applications whose requirements are impossible to satisfy with conventional wafer-based technologies or even with those that offer simple bendability. This article introduces materials and mechanical design strategies for classes of electronic circuits that offer extremely high stretchability, enabling them to accommoda  ...[more]

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