Download PDF

Nature Materials

Publication date: 2019-06-01
Volume: 18 Pages: 594 -
Publisher: Nature Research

Author:

Xu, Jie
Wu, Hung-Chin ; Zhu, Chenxin ; Ehrlich, Anatol ; Shaw, Leo ; Nikolka, Mark ; Wang, Sihong ; Molina-Lopez, Francisco ; Gu, Xiaodan ; Luo, Shaochuan ; Zhou, Dongshan ; Kim, Yun-Hi ; Wang, Ging-Ji Nathan ; Gu, Kevin ; Feig, Vivian Rachel ; Chen, Shucheng ; Kim, Yeongin ; Katsumata, Toru ; Zheng, Yu-Qing ; Yan, He ; Chung, Jong Won ; Lopez, Jeffrey ; Murmann, Boris ; Bao, Zhenan

Keywords:

Science & Technology, Physical Sciences, Technology, Chemistry, Physical, Materials Science, Multidisciplinary, Physics, Applied, Physics, Condensed Matter, Chemistry, Materials Science, Physics, UNIAXIAL ALIGNMENT, CHARGE-TRANSPORT, MOBILITY, ELECTRONICS, Nanoscience & Nanotechnology

Abstract:

Stretchable semiconducting polymers have been developed as a key component to enable skin-like wearable electronics, but their electrical performance must be improved to enable more advanced functionalities. Here, we report a solution processing approach that can achieve multi-scale ordering and alignment of conjugated polymers in stretchable semiconductors to substantially improve their charge carrier mobility. Using solution shearing with a patterned microtrench coating blade, macroscale alignment of conjugated-polymer nanostructures was achieved along the charge transport direction. In conjunction, the nanoscale spatial confinement aligns chain conformation and promotes short-range π-π ordering, substantially reducing the energetic barrier for charge carrier transport. As a result, the mobilities of stretchable conjugated-polymer films have been enhanced up to threefold and maintained under a strain up to 100%. This method may also serve as the basis for large-area manufacturing of stretchable semiconducting films, as demonstrated by the roll-to-roll coating of metre-scale films.