Maharsi Retno, Arif Aditya Farhan, Ogi Takashi, Widiyandari Hendri, Iskandar Ferry
National Center for Sustainable Transportation Technology (NCSTT), Intitut Teknologi Bandung Jl. Ganesa No. 10 Bandung 40132 Indonesia
Department of New Investment, PT Rekayasa Industri Jl. Kalibata Timur I No. 36 Jakarta 12740 Indonesia.
RSC Adv. 2019 Sep 4;9(48):27896-27903. doi: 10.1039/c9ra04346b. eCollection 2019 Sep 3.
Transition metal oxides are known as the active materials for capacitors. As a class of transition metal oxide, Magnéli phase TiO is particularly attractive because of its excellent conductivity. This work investigated the electrochemical characteristics of TiO and its composite with reduced graphene oxide (rGO). Two types of TiO , low and high reduction extent, were employed in this research. Electrochemical impedance spectroscopy revealed that TiO with lower reduction extent delivered higher electro-activity and charge transfer resistance at the same time. However, combining 10% of low-reduction state TiO and rGO using a simple mixing process delivered a high specific capacitance (98.8 F g), which was higher than that of standalone rGO (49.5 F g). A further improvement in the specific capacitance (102.6 F g) was given by adding PEDOT:PSS conductive polymer. Results of this research gave a basic understanding in the electrochemical behavior of Magnéli phase TiO for the utilization of this material as supercapacitor in the future.
过渡金属氧化物被认为是电容器的活性材料。作为一类过渡金属氧化物,马涅利相TiO因其优异的导电性而特别具有吸引力。这项工作研究了TiO及其与还原氧化石墨烯(rGO)复合材料的电化学特性。本研究采用了两种还原程度不同的TiO,即低还原程度和高还原程度的TiO。电化学阻抗谱表明,还原程度较低的TiO在具有较高电活性的同时,电荷转移电阻也较高。然而,通过简单的混合工艺将10%的低还原态TiO与rGO结合,可得到较高的比电容(98.8 F/g),高于单独的rGO(49.5 F/g)。通过添加PEDOT:PSS导电聚合物,比电容进一步提高(102.6 F/g)。本研究结果为未来将马涅利相TiO用作超级电容器材料的电化学行为提供了基本认识。