Otgonbayar Zambaga, Fatema Kamrun Nahar, Yang Sunhye, Kim Ick-Jun, Kim Minchul, Shim Sang Eun, Oh Won-Chun
Department of Advanced Materials Science and Engineering, Hanseo University, Seosan-si, Chungnam, 356-706, Republic of Korea.
Korea Electrotechnology Research Institute, 12, Boolmosan-ro, 10beon-gil, Seongsan-gu, Changwon-si, Gyeongsangnam-do, 51543, Republic of Korea.
Sci Rep. 2021 Jan 12;11(1):534. doi: 10.1038/s41598-020-79469-7.
Herein, we manufactured the positive and negative electrodes for the hybrid capacitor. The Mn-doped High surface area of Activated carbon composite used for the positive electrode and as-prepared composite was calcined at 600 °C and 800 °C. The morphological structures and pore-size distributions of MnYP-600HTT and MnYP-800HTT were characterized by means of XRD, SEM, EDAX, TEM, and BET. According to the BET specific surface-area evaluation, MnYP-600HTT and MnYP-800HTT were 1272.6 and 1388.1 m/g, respectively. Total pore volumes were 0.627 and 0.687 cm/g, which is beneficial for forming ion-transport channels in electrochemical reactions. The MnYP-600HTT electrode had a high specific capacity of 177.2 mAh/g at 20C, and the capacity retention was 64.8%. During the entire cycling, MnYP-600HTT had excellent cyclic stability in 500 cycles along with high efficiency. The robust design of the MnYP-600HTT and MnYP-800HTT cathode materials introduced in this work pave the way for designing next-generation supercapacitors operating at ultra-high C rates. The Mn-doped high surface of activated carbon had stable energy density and superior cycling stability that were demonstrated in supercapacitor systems.
在此,我们制备了混合电容器的正负极。用于正极的锰掺杂高比表面积活性炭复合材料以及所制备的复合材料分别在600℃和800℃下煅烧。通过XRD、SEM、EDAX、TEM和BET对MnYP - 600HTT和MnYP - 800HTT的形态结构和孔径分布进行了表征。根据BET比表面积评估,MnYP - 600HTT和MnYP - 800HTT分别为1272.6和1388.1 m/g。总孔体积分别为0.627和0.687 cm/g,这有利于在电化学反应中形成离子传输通道。MnYP - 600HTT电极在20C时具有177.2 mAh/g的高比容量,容量保持率为64.8%。在整个循环过程中,MnYP - 600HTT在500次循环中具有优异的循环稳定性和高效率。本文介绍的MnYP - 600HTT和MnYP - 800HTT正极材料的稳健设计为设计在超高C速率下运行的下一代超级电容器铺平了道路。锰掺杂的高比表面积活性炭在超级电容器系统中表现出稳定的能量密度和优异的循环稳定性。