Jingyun Zou
Chinese Academy of Sciences
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Publication
Featured researches published by Jingyun Zou.
Advanced Materials | 2015
Ru Li; Xi Xiang; Xiao Tong; Jingyun Zou; Qingwen Li
Wearable double-twisted fibrous perovskite solar cells are developed based on flexible carbon nanotube fiber electrodes, which exhibit a maximum power conversion efficiency of 3.03% and bending stability larger than 1000 cycles, and maintain 89% efficiency after 96 h in ambient conditions if sealed by a transparent polymer layer. The obtained superior performance can shed light on future self-powering e-textiles.
Advanced Materials | 2014
Fancheng Meng; Xiaohua Zhang; Ru Li; Jingna Zhao; Xiaohui Xuan; Xinhao Wang; Jingyun Zou; Qingwen Li
The electromechanical and electrothermal responses of carbon nanotube fibers provide new ways to use energy conversion, including the modulation of assembly structures by alternative densification and relaxation. The most efficient way to strengthen the tensile strength up to 2.32-2.50 GPa is shown as well as a microscale, nanotube-based Chinese calligraphy brush.
ACS Applied Materials & Interfaces | 2018
Jingyun Zou; Dandan Liu; Jingna Zhao; Ligan Hou; Tong Liu; Xiaohua Zhang; Yonghao Zhao; Yuntian Zhu; Qingwen Li
Carbon nanotube (CNT) fiber has not shown its advantage as next-generation light-weight conductor due to the large contact resistance between CNTs, as reflected by its low conductivity and ampacity. Coating CNT fiber with a metal layer like Cu has become an effective solution to this problem. However, the weak CNT-Cu interfacial bonding significantly limits the mechanical and electrical performances. Here, we report that a strong CNT-Cu interface can be formed by introducing a Ni nanobuffer layer before depositing the Cu layer. The Ni nanobuffer layer remarkably promotes the load and heat transfer efficiencies between the CNT fiber and Cu layer and improves the quality of the deposited Cu layer. As a result, the new composite fiber with a 2 μm thick Cu layer can exhibit a superhigh effective strength >800 MPa, electrical conductivity >2 × 107 S/m, and ampacity >1 × 105 A/cm2. The composite fiber can also sustain 10 000 times of bending and continuously work for 100 h at 90% ampacity.
Composites Science and Technology | 2016
Jingyun Zou; Xiaohua Zhang; Jingna Zhao; Chaoshuai Lei; Yonghao Zhao; Yuntian Zhu; Qingwen Li
Carbon | 2016
Jingna Zhao; Qingsong Li; Bing Gao; Xinhao Wang; Jingyun Zou; Shan Cong; Xiaohua Zhang; Zhijuan Pan; Qingwen Li
Advanced Materials Interfaces | 2016
Xueping Yu; Xiaohua Zhang; Jingyun Zou; Zhuyao Lan; Chunyang Jiang; Jingna Zhao; Dengsong Zhang; Menghe Miao; Qingwen Li
Advanced Engineering Materials | 2016
Chaoshuai Lei; Jingna Zhao; Jingyun Zou; Chunyang Jiang; Min Li; Xiaohua Zhang; Zuoguang Zhang; Qingwen Li
Carbon | 2017
Jingyun Zou; Xiaohua Zhang; Chao Xu; Jingna Zhao; Yuntian Zhu; Qingwen Li
Nanoscale | 2014
Ru Li; Hongfang Li; Jingyun Zou; Xiaohua Zhang; Qingwen Li
Materials & Design | 2018
Jingna Zhao; Xiaohua Zhang; Yuyao Huang; Jingyun Zou; Tong Liu; Ningning Liang; Fapeng Yu; Zhijuan Pan; Yuntian Zhu; Menghe Miao; Qingwen Li