Abbas Qasim, Wen Lianghua, Javed Muhammad Sufyan, Ahmad Awais, Nazir Muhammad Shahzad, Assiri Mohammed A, Imran Muhammad, Bocchetta Patrizia
Department of Intelligent Manufacturing, Yibin University, Yibin 644000, China.
School of Physical Science and Technology, Lanzhou University, Lanzhou 730000, China.
Materials (Basel). 2022 Mar 18;15(6):2250. doi: 10.3390/ma15062250.
Considerable efforts are underway to rationally design and synthesize novel electrode materials for high-performance supercapacitors (SCs). However, the creation of suitable materials with high capacitance remains a big challenge for energy storage devices. Herein, unique three-dimensional (3D) ZnO hexagonal cubes on carbon cloth (ZnO@CC) were synthesized by invoking a facile and economical hydrothermal method. The mesoporous ZnO@CC electrode, by virtue of its high surface area, offers rich electroactive sites for the fast diffusion of electrolyte ions, resulting in the enhancement of the SC's performance. The ZnO@CC electrode demonstrated a high specific capacitance of 352.5 and 250 F g at 2 and 20 A g, respectively. The ZnO@CC electrode revealed a decent stability of 84% over 5000 cycles at 20 A g and an outstanding rate-capability of 71% at a 10-fold high current density with respect to 2 A g. Thus, the ZnO@CC electrode demonstrated improved electrochemical performance, signifying that ZnO as is promising candidate for SCs applications.
目前正在进行大量努力,以合理设计和合成用于高性能超级电容器(SCs)的新型电极材料。然而,对于储能设备而言,制备具有高电容的合适材料仍然是一项巨大挑战。在此,通过一种简便且经济的水热法合成了碳布上独特的三维(3D)ZnO六角立方体(ZnO@CC)。介孔ZnO@CC电极凭借其高表面积,为电解质离子的快速扩散提供了丰富的电活性位点,从而提高了超级电容器的性能。ZnO@CC电极在2和20 A g时的比电容分别为352.5和250 F g。ZnO@CC电极在20 A g下5000次循环中显示出84%的良好稳定性,在相对于2 A g的10倍高电流密度下具有71%的出色倍率性能。因此,ZnO@CC电极展示出改善的电化学性能,表明ZnO是超级电容器应用中有前景的候选材料。