| Literature DB >> 30988452 |
Jie Xu1,2, Hung-Chin Wu1, Chenxin Zhu3, Anatol Ehrlich1, Leo Shaw1, Mark Nikolka1, Sihong Wang1,4, Francisco Molina-Lopez1,5, Xiaodan Gu1,6,7, Shaochuan Luo8, Dongshan Zhou8, Yun-Hi Kim9, Ging-Ji Nathan Wang1, Kevin Gu1, Vivian Rachel Feig10, Shucheng Chen1, Yeongin Kim3, Toru Katsumata1,11, Yu-Qing Zheng1, He Yan12, Jong Won Chung1,13, Jeffrey Lopez1, Boris Murmann3, Zhenan Bao14.
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.Entities:
Year: 2019 PMID: 30988452 DOI: 10.1038/s41563-019-0340-5
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841