Zhang Peng, Cao Zhi, Liu Chunle, Li Pengni, Kong Hui, Li Ting, Luo Xiaomin, Feng Jianyan, Yuan Kaiyun, Xu Ruqing
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science & Technology Wei Yang District Xi'an 710021 Shaanxi China
National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi University of Science &Technology Wei Yang District Xi'an 710021 Shaanxi China.
RSC Adv. 2023 Jun 27;13(28):19388-19402. doi: 10.1039/d3ra00638g. eCollection 2023 Jun 22.
The preparation of freestanding graphene films by convenient and environmentally friendly preparation methods is still the focus of attention in various industrial fields. Here, we first select electrical conductivity, yield and defectivity as evaluation indicators and systematically explore the factors affecting the preparation of high-performance graphene by electrochemical exfoliation, then further post-process it under volume-limited conditions by microwave reduction. Finally, we obtained a self-supporting graphene film with an irregular interlayer structure but excellent performance. It is found that the electrolyte is ammonium sulfate, the concentration is 0.2 M, the voltage is 8 V, and the pH is 11, which were the optimal conditions for preparing low-oxidation graphene. The square resistance of the EG was 1.6 Ω sq, and the yield could be 65%. In addition, electrical conductivity and joule heat were significantly improved after microwave post-processing, especially its electromagnetic shielding performance with a shielding coefficient of 53 dB able to be achieved. At the same time, the thermal conductivity is as low as 0.05 W m K. The mechanism for the improvement of electromagnetic shielding performance is that (1) microwave reduction effectively enhances the conductivity of the graphene sheet overlapping network; (2) the gas generated by the instantaneous high temperature causes a large number of void structures between the graphene layers, and the irregular interlayer stacking structure makes the reflective surface more disordered, thereby prolonging the reflection path of electromagnetic waves among layers. In summary, this simple and environmentally friendly preparation strategy has good practical application prospects for graphene film products in flexible wearables, intelligent electronic devices, and electromagnetic wave protection.
通过便捷且环保的制备方法制备独立的石墨烯薄膜仍是各个工业领域关注的焦点。在此,我们首先选取电导率、产率和缺陷率作为评价指标,系统地探究了影响电化学剥离制备高性能石墨烯的因素,然后在体积受限条件下通过微波还原对其进行进一步后处理。最终,我们获得了一种具有不规则层间结构但性能优异的自支撑石墨烯薄膜。研究发现,电解液为硫酸铵,浓度为0.2 M,电压为8 V,pH值为11时,这些是制备低氧化态石墨烯的最佳条件。该氧化石墨烯的方阻为1.6 Ω/sq,产率可达65%。此外,微波后处理后电导率和焦耳热显著提高,尤其是其电磁屏蔽性能可达到屏蔽系数53 dB。同时,热导率低至0.05 W/(m·K)。电磁屏蔽性能提高的机制在于:(1)微波还原有效增强了石墨烯片层重叠网络的导电性;(2)瞬间高温产生的气体在石墨烯层间导致大量孔隙结构,不规则的层间堆叠结构使反射面更加无序,从而延长了电磁波在层间的反射路径。综上所述,这种简单且环保的制备策略对于石墨烯薄膜产品在柔性可穿戴设备、智能电子器件和电磁波防护方面具有良好的实际应用前景。