Du Xiaojia, Wang Hai, Wang Yunfei, Cao Zhiqiang, Yang Leyi, Shi Xiaohu, Zhang Xiaoxu, He Chengzhi, Gu Xiaodan, Liu Nan
Beijing Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, Beijing Normal University, Beijing, 100875, P. R. China.
School of Polymer Science and Engineering, The University of Southern Mississippi, Hattiesburg, MS, 39406, USA.
Adv Mater. 2024 Aug;36(31):e2403411. doi: 10.1002/adma.202403411. Epub 2024 Jun 17.
Understanding psychology is an important task in modern society which helps predict human behavior and provide feedback accordingly. Monitoring of weak psychological and emotional changes requires bioelectronic devices to be stretchable and compliant for unobtrusive and high-fidelity signal acquisition. Thin conductive polymer film is regarded as an ideal interface; however, it is very challenging to simultaneously balance mechanical robustness and opto-electrical property. Here, a 40 nm-thick film based on photolithographic double-network conductive polymer mediated by graphene layer is reported, which concurrently enables stretchability, conductivity, and conformability. Photolithographic polymer and graphene endow the film photopatternability, enhance stress dissipation capability, as well as improve opto-electrical conductivity (4458 S cm@>90% transparency) through molecular rearrangement by π-π interaction, electrostatic interaction, and hydrogen bonding. The film is further applied onto corrugated facial skin, the subtle electromyogram is monitored, and machine learning algorithm is performed to understand complex emotions, indicating the outstanding ability for stretchable and compliant bioelectronics.
理解心理学是现代社会中的一项重要任务,它有助于预测人类行为并据此提供反馈。监测微弱的心理和情绪变化需要生物电子设备具有可拉伸性和顺应性,以便进行不引人注意的高保真信号采集。薄导电聚合物薄膜被视为理想的界面;然而,同时平衡机械强度和光电性能极具挑战性。在此,报道了一种基于由石墨烯层介导的光刻双网络导电聚合物的40纳米厚薄膜,它同时具备可拉伸性、导电性和顺应性。光刻聚合物和石墨烯赋予薄膜光图案化能力,增强应力耗散能力,并通过π-π相互作用、静电相互作用和氢键作用进行分子重排,从而提高光电导率(4458 S cm@>90%透明度)。该薄膜进一步应用于有皱纹的面部皮肤,监测细微的肌电图,并运用机器学习算法来理解复杂情绪,这表明其在可拉伸和顺应性生物电子学方面具有出色能力。