| Citation: |
Yan Peng, Siyu Xie, Xiaofan Zhu, Yuke Deng, Weiwei Guo, Yuxiao Zhang, Yue Liu. Stretchable flexible electrodes based on in situ coating of graphite with PANI[J]. Journal of Semiconductors, 2026, In Press. doi: 10.1088/1674-4926/26060029
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Y Peng, S Y Xie, X F Zhu, Y K Deng, W W Guo, Y X Zhang, and Y Liu, Stretchable flexible electrodes based on in situ coating of graphite with PANI[J]. J. Semicond., 2026, accepted doi: 10.1088/1674-4926/26060029
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Stretchable flexible electrodes based on in situ coating of graphite with PANI
DOI: 10.1088/1674-4926/26060029
CSTR: 32376.14.1674-4926.26060029
More Information-
Abstract
Stretchable bioelectrodes need both conductivity and deformation stability, but the conductive pathways of traditional rigid materials are prone to instability during stretching. In this study, polyaniline coated graphite powder (PANI@G) core shell fillers were constructed through the in situ oxidative polymerization of aniline and were sprayed onto a styrene-ethylene/butylene-styrene block copolymer (SEBS) substrate to prepare stretchable conductive films. The PANI coating layer improved the connection between graphite lamellae through interfacial interactions among nitrogen containing groups, oxygen containing functional groups, and conjugated structures. As a result, the film retained approximately 89% of its initial current at 75% strain, and the current drift was only 2.3% during 126 min of continuous stretching at 50% strain. The film was further patterned into lightweight flexible electrodes and realized electrical signal acquisition induced by electrical stimulation, providing an effective strategy for wearable flexible electrodes. -
References
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Proportional views



Yan Peng is currently an undergraduate student majoring in Materials Science and Engineering at Kunming University of Science and Technology. Her research interest lies in flexible visual electronic devices.
Siyu Xie is currently an MS candidate in the College of Materials Science and Engineering, Kunming University of Science and Technology. He received his Bachelor’s degree in materials science and engineering from Kunming University of Science and Technology, China, in 2020. His current research interests focus on flexible electronic devices.
Yuxiao Zhang obtained a bachelor’s degree from Dalian University of Technology in 2021. In 2026, he received a master's degree from Kunming University of Science and Technology, under the guidance of Professor Yang Zhengwen. Currently, he is pursuing a doctoral degree at Beihang University, under the supervision of Professor Pan Caofeng. His main research field is electrochromic and sensor visualization integrated devices.
Yue Liu received her BS (2017) in materials science and engineering from the China University of Geosciences (Beijing), China. She received her PhD (2022) in the group of Prof. Caofeng Pan from the Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, China. She has been working in the group of Prof. Jianbei Qiu at the Kunming University of Science and Technology as a specially-appointed professor since 2023. Her main research interests include flexible visual electronic skin (E-skin) and its applications in human–machine interfaces.
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