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首页> 外文期刊>Scientific reports. >Effect of porosity enhancing agents on the electrochemical performance of high-energy ultracapacitor electrodes derived from peanut shell waste
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Effect of porosity enhancing agents on the electrochemical performance of high-energy ultracapacitor electrodes derived from peanut shell waste

机译:孔隙率增强剂对花生壳废弃物衍生高能超容器电极电化学性能的影响

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In this study, the synthesis of porous activated carbon nanostructures from peanut (Arachis hypogea) shell waste (PSW) was described using different porosity enhancing agents (PEA) at various mass concentrations via a two-step process. The textural properties obtained were depicted with relatively high specific surface area values of 1457?msup2/sup?gsup-1/sup, 1625?msup2/sup?gsup-1/sup and 2547?msup2/sup?gsup-1/sup for KHCOsub3,/sub Ksub2/subCOsub3/sub and KOH respectively at a mass concentration of 1 to 4 which were complemented by the presence of a blend of micropores, mesopores and macropores. The structural analyses confirmed the successful transformation of the carbon-containing waste into an amorphous and disordered carbonaceous material. The electrochemical performance of the material electrodes was tested in a 2.5?M KNOsub3/sub aqueous electrolyte depicted its ability to operate reversibly in both negative and positive potential ranges of 0.90?V. The activated carbon obtained from the carbonized CPSW:PEA with a mass ratio of 1:4 yielded the best electrode performance for all featured PEAs. The porous carbons obtained using KOH activation displayed a higher specific capacitance and the lower equivalent series resistance as compared to others. The remarkable performance further corroborated the findings linked to the textural and structural properties of the material. The assembled device operated in a neutral electrolyte (2.5?M KNOsub3/sub) at a cell potential of 1.80?V, yielded a ca. 224.3?F?gsup-1/sup specific capacitance at a specific current of 1?A?gsup-1/sup with a corresponding specific energy of 25.2?Wh?kgsup-1/sup and 0.9?kW?kgsup-1/sup of specific power. This device energy was retained at 17.7?Wh?kgsup-1/sup when the specific current was quadrupled signifying an excellent supercapacitive retention with a corresponding specific power of 3.6?kW?kgsup-1/sup. These results suggested that peanut shell waste derived activated carbons are promising candidates for high-performance supercapacitors.
机译:在该研究中,使用不同的孔隙率增强剂(PEA)通过两步方法使用不同的孔隙率增强剂(PEA)来描述来自花生(甘氏斜腹)壳废料(PSW)的多孔活性炭纳米结构的合成。用相对高的比表面积值的1457μm 2 2-g -1-s,1625Δm 2 Δb -1 和2547?m 2 αg -1 用于Khco 3, k 2 3 水电解质中测试材料电极的电化学性能,描绘了其在0.90Ωv的负极和正电位范围内可逆地操作的能力。从碳化的CPSW获得的活性炭:质量比为1:4的豌豆产生了所有特色豌豆的最佳电极性能。使用KOH激活获得的多孔碳显示出更高的特定电容和与其他相比较低的等效串联电阻。显着性能进一步证实了与材料的纹理和结构性能相关的结果。在1.80Ω·v的电池电位下以中性电解质(2.5·m Kno 3 )在中性电解质(2.5·m Kno )中操作的组装装置产生了Ca. 224.3?f?f?g -1 特定电容在1Ω的特定电流下,具有相应的特定能量为25.2Ω·kg - 1 和0.9?kW?kg -1 特定功率。该装置能量在17.7℃下保留在17.7℃下,当比例具有相应的特定功率为3.6Ω·kg -1 。这些结果表明,花生壳废物衍生的活性碳是高性能超级电容器的承诺候选者。

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