Ahmad Aziz, Gondal Mohammed Ashraf, Hassan Muhammad, Iqbal Rashid, Ullah Sami, Alzahrani Atif Saeed, Memon Waqar Ali, Mabood Fazal, Melhi Saad
Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM, Box 5040, Dhahran 31261, Saudi Arabia.
Laser Research Group, Physics Department and IRC-Hydrogen and Energy Storage, King Fahd University of Petroleum & Minerals, KFUPM, Box 5047, Dhahran 31261, Saudi Arabia.
ACS Omega. 2023 Jun 9;8(24):21653-21663. doi: 10.1021/acsomega.3c01065. eCollection 2023 Jun 20.
Biomass-derived activated carbons have gained significant attention as electrode materials for supercapacitors (SCs) due to their renewability, low-cost, and ready availability. In this work, we have derived physically activated carbon from date seed biomass as symmetric electrodes and PVA/KOH has been used as a gel polymer electrolyte for all-solid-state SCs. Initially, the date seed biomass was carbonized at 600 °C (C-600) and then it was used to obtain physically activated carbon through CO activation at 850 °C (C-850). The SEM and TEM images of C-850 displayed its porous, flaky, and multilayer type morphologies. The fabricated electrodes from C-850 with PVA/KOH electrolytes showed the best electrochemical performances in SCs (Lu et al. , , , 2160) application. Cyclic voltammetry was performed from 5 to 100 mV s, illustrating an electric double layer behavior. The C-850 electrode delivered a specific capacitance of 138.12 F g at 5 mV s, whereas it retained 16 F g capacitance at 100 mV s. Our assembled all-solid-state SCs exhibit an energy density of 9.6 Wh kg with a power density of 87.86 W kg. The internal and charge transfer resistances of the assembled SCs were 0.54 and 17.86 Ω, respectively. These innovative findings provide a universal and KOH-free activation process for the synthesis of physically activated carbon for all solid-state SCs applications.
生物质衍生的活性炭由于其可再生性、低成本和易于获取,作为超级电容器(SCs)的电极材料受到了广泛关注。在这项工作中,我们以枣籽生物质为原料制备了物理活性炭作为对称电极,并将PVA/KOH用作全固态SCs的凝胶聚合物电解质。最初,枣籽生物质在600°C碳化(C-600),然后通过在850°C进行CO活化获得物理活性炭(C-850)。C-850的SEM和TEM图像显示出其多孔、片状和多层形态。用C-850和PVA/KOH电解质制备的电极在SCs应用中表现出最佳的电化学性能(Lu等人,,,2160)。循环伏安法在5至100 mV s范围内进行,表明存在双电层行为。C-850电极在5 mV s时的比电容为138.12 F g,而在100 mV s时保留16 F g的电容。我们组装的全固态SCs的能量密度为9.6 Wh kg,功率密度为87.86 W kg。组装的SCs的内阻和电荷转移电阻分别为0.54和17.86Ω。这些创新性的发现为全固态SCs应用中物理活性炭的合成提供了一种通用且无KOH的活化工艺。