School of Chemical and Biological Engineering, Seoul National University , 599 Gwanak-ro, Gwanak-gu, Seoul 151-742, Korea.
Department of Chemical and Biomedical Engineering, Florida State University , Tallahassee, Florida 32310, United States.
ACS Appl Mater Interfaces. 2017 Feb 15;9(6):5222-5230. doi: 10.1021/acsami.6b13050. Epub 2017 Feb 1.
In this study, a three-dimensional (3D) mesoporous plasma-reduced graphene oxide web (mPrGO web) was fabricated via lyophilization of graphene oxide (GO) solution and subsequent plasma reduction. The lyophilized graphene oxide web (GO web) was successfully reduced by a short plasma treatment (<2 s) using a commercially available plasma apparatus. The degree of reduction of the mPrGO web was determined by the applied plasma power (W) of the apparatus; the optimum power level for effective reduction was identified. The as-synthesized mPrGO web showed a high degree of reduction and robust graphitic characteristics, with a unique crack-like mesoporous structure created on corrugated graphene sheets. In addition to the above characteristics, the mPrGO web possessed a 3D web-like architecture that provided enhanced surface area along with ion-transportable channels derived from lyophilization. Owing to the synergistic effect of lyophilization and plasma reduction, the mPrGO web exhibited high electrical conductivity (87 S cm) and increased surface area (642 m g). Accordingly, the mPrGO web showed outstanding specific capacitance of 253.8 F g at 0.2 A g along with the excellent rate capability (76% capacitance retention at 5 A g). Furthermore, the assembled all-solid-state symmetric supercapacitor also exhibited remarkable electrochemical performances, demonstrating the potential applicability of the mPrGO web as an effective supercapacitor electrode material.
在这项研究中,通过冷冻干燥氧化石墨烯(GO)溶液和随后的等离子体还原,制备了一种三维(3D)介孔等离子体还原氧化石墨烯网(mPrGO 网)。使用市售的等离子体设备,通过短时间的等离子体处理(<2 秒),成功地还原了冷冻干燥的氧化石墨烯网(GO 网)。mPrGO 网的还原程度由设备施加的等离子体功率(W)决定;确定了有效还原的最佳功率水平。所合成的 mPrGO 网表现出高度的还原和坚固的石墨特性,在波纹状石墨烯片上形成了独特的裂纹状介孔结构。除了上述特性外,mPrGO 网还具有 3D 网状结构,提供了增强的表面积,以及由冷冻干燥产生的离子可传输通道。由于冷冻干燥和等离子体还原的协同效应,mPrGO 网表现出高电导率(87 S cm)和增加的表面积(642 m g)。因此,mPrGO 网在 0.2 A g 下表现出出色的比电容 253.8 F g,以及出色的倍率性能(在 5 A g 下保持 76%的电容)。此外,组装的全固态对称超级电容器也表现出显著的电化学性能,表明 mPrGO 网作为有效超级电容器电极材料的潜在适用性。