Please use this identifier to cite or link to this item: https://doi.org/10.1038/s41467-021-27370-w
Title: Wafer-scale integration of stretchable semiconducting polymer microstructures via capillary gradient
Authors: Qiu, Yuchen
Zhang, Bo
Yang, Junchuan
Gao, Hanfei
Li, Shuang
Wang, Le
Wu, Penghua
Su, Yewang
Zhao, Yan
Feng, Jiangang 
Jiang, Lei
Wu, Yuchen
Issue Date: 1-Dec-2021
Publisher: Nature Research
Citation: Qiu, Yuchen, Zhang, Bo, Yang, Junchuan, Gao, Hanfei, Li, Shuang, Wang, Le, Wu, Penghua, Su, Yewang, Zhao, Yan, Feng, Jiangang, Jiang, Lei, Wu, Yuchen (2021-12-01). Wafer-scale integration of stretchable semiconducting polymer microstructures via capillary gradient. Nature Communications 12 (1) : 7038. ScholarBank@NUS Repository. https://doi.org/10.1038/s41467-021-27370-w
Rights: Attribution 4.0 International
Abstract: Organic semiconducting polymers have opened a new paradigm for soft electronics due to their intrinsic flexibility and solution processibility. However, the contradiction between the mechanical stretchability and electronic performances restricts the implementation of high-mobility polymers with rigid molecular backbone in deformable devices. Here, we report the realization of high mobility and stretchability on curvilinear polymer microstructures fabricated by capillary-gradient assembly method. Curvilinear polymer microstructure arrays are fabricated with highly ordered molecular packing, controllable pattern, and wafer-scale homogeneity, leading to hole mobilities of 4.3 and 2.6 cm2 V?1 s?1 under zero and 100% strain, respectively. Fully stretchable field-effect transistors and logic circuits can be integrated in solution process. Long-range homogeneity is demonstrated with the narrow distribution of height, width, mobility, on-off ratio and threshold voltage across a four-inch wafer. This solution-assembly method provides a platform for wafer-scale and reproducible integration of high-performance soft electronic devices and circuits based on organic semiconductors. © 2021, The Author(s).
Source Title: Nature Communications
URI: https://scholarbank.nus.edu.sg/handle/10635/232689
ISSN: 2041-1723
DOI: 10.1038/s41467-021-27370-w
Rights: Attribution 4.0 International
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