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Electrochemical performance of new hybrid activated carbon materials from binary and ternary Date-Olive pits for supercapacitor electrodes

机译:用于超级电容器电极的二元和三元枣橄榄坑新型杂化活性炭材料的电化学性能

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In the present work, hybrid composites have been proposed as electrode materials for supercapacitor. Therefore, this work is focused on the simple preparation without catalyst of low-cost binary and ternary activated carbons derived from agricultural waste such as Algerian date and olive pits, which give excellent results with high specific power and high specific energy. The binary Olive-Date and ternary Olive-Date-Sugar materials have been prepared using a planetary crusher and their corresponding activated carbons (AC(OD) and AC(ODS)) were characterized by ATR-FTIR, BET, SEM, Raman, XRD, Laser diffractionand electrochemical methods. nbsp;The electrochemical results showed that AC(OD) has a specific capacitance of 104.10 F.g(-1) at 0.3 A.g(-1) with specific energy of 17.56 Wh.kg(-1). However, the ternary material (AC(ODS)) demonstrated outstanding performances with excellent specific capacitance (528 F.g(-1) nbsp;at 0.3 A.g(-1)) and high specific energy (36.82 Wh.kg(-1)) as well as a high stability for 10,000 charge-discharge cycles at 10 A.g(-1), with a capacitance retention of 89.6. EIS measurements showed that the AC(ODS nbsp;)material shows lower charge transfer resistance (19.4 omega). Based on the above parameters, this study revealed a huge capacity of the new activated carbon material (AC(ODS)) to obtain stable high-performance supercapacitor electrode for energy storage.
机译:在目前的工作中,已经提出了混合复合材料作为超级电容器的电极材料。因此,本研究的重点是在无催化剂的情况下简单制备来自阿尔及利亚枣和橄榄核等农业废弃物的低成本二元和三元活性炭,这些活性炭具有高比功率和高比能的出色效果。采用行星式破碎机制备了二元橄榄枣和三元橄榄枣糖材料,并利用ATR-FTIR、BET、SEM、Raman、XRD、激光衍射和电化学方法对它们相应的活性炭(AC(OD)和AC(ODS))进行了表征。电化学结果表明,AC(OD)在0.3 A.g(-1)时的比电容为104.10 F.g(-1),比能量为17.56 Wh.kg(-1)。然而,三元材料(AC(ODS))表现出出色的性能,具有出色的比电容(528 F.g(-1) 在0.3 A.g(-1))和高比能量(36.82 Wh.kg(-1))下,在10 A.g(-1)下具有10,000次充放电循环的高稳定性,电容保持率为89.6%。EIS测量结果显示,AC(ODS )材料显示出较低的电荷转移电阻(19.4 Ω)。基于上述参数,本研究揭示了新型活性炭材料(AC(ODS))获得稳定高性能储能超级电容器电极的巨大容量。

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