用于增强耐腐蚀性和储能性能的电纺还原氧化石墨烯/氧化镍/聚(己内酰胺)纳米纤维的合成与表征

Sagolsem Nonganbi Chanu, Bibhu Prasad Swain
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引用次数: 0

摘要

本研究采用化学还原法合成了不同浓度的还原氧化石墨烯(rGO)/氧化镍(NiO)/聚(己内酰胺)(PCL)纳米纤维。21.3° 和 24.5° 处的 X 射线衍射峰显示了 PCL 聚合物的 (110) 和 (200) 平面,具有正交单胞参数。在 26.9° 和 37.3° 处的宽峰分别是 rGO/NiO/PCL 纳米纤维中 rGO 和 NiO 的平面 (002) 和 (111)。纯 rGO 和 rGO/NiO/PCL 的碳缺陷参数 ID/IG 在 0.87 至 0.33 之间变化,表明随着 rGO 含量从 5 % 增加到 15 %,rGO/NiO/PCL 纳米纤维中的 sp2 域增加。随着 rGO 含量的增加,rGO/NiO/PCL 纳米纤维的耐腐蚀性 Ecorr 和 Icorr 也随之增加。腐蚀分析表明,Ecorr 和 Icorr 的最小值分别为 0.04 V 和 2.6 μA。循环伏安法(CV)和电化学充放电分析(GCD)估算出的比电容分别为 381.9 Fg-1(扫描速率为 5mVs-1 时)和 524 Fg-1。15 wt% rGO/NiO/PCL 纳米纤维的最大能量密度 E 和功率密度 P 分别为 72.7 W h kg-1 和 499.9 k W kg-1。此外,rGO/NiO/PCL 纳米复合材料具有良好的循环稳定性,在 1000 次充放电循环后,其循环稳定性达到 65.5%。NiO/rGO/PCL纳米复合材料是超级电容器应用的最佳候选材料之一
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Synthesis and characterization of electrospun reduced graphene oxide/nickel oxide/poly(caprolactone) nanofibers for enhanced corrosion resistance and energy storage performance

In this work, electrospun reduced graphene oxide (rGO)/nickel oxide (NiO)/poly(caprolactone) (PCL) nanofibers were prepared with different concentrations of rGO was synthesized using a chemical reduction route. X-ray diffraction peaks at 21.3° and 24.5° reveal (110) and (200) planes of PCL polymer with orthorhombic unit cell parameters. Broad peaks at 26.9° and 37.3° are the plane (002) and (111) respectively for rGO and NiO, respectively in the rGO/NiO/PCL nanofiber. The defect parameter in carbon, ID/IG, for pure rGO and rGO/NiO/PCL varied from 0.87 to 0.33, indicating an increase in the sp2 domain as the rGO content increased from 5 % and 15 % of rGO/NiO/PCL nanofiber. The corrosion resistance of rGO/NiO/PCL nanofiber Ecorr and Icorr increases with increasing rGO content. In corrosion, analysis reveals the minimum values of Ecorr and Icorr are 0.04 V and 2.6 μA, respectively. The specific capacitance estimated from cyclic voltammetry, CV and Galvanic charging and discharging, GCD analysis is 381.9 Fg−1 at a scan rate of 5mVs−1 and 524 Fg−1 respectively. The maximum energy density, E and power density, P are 72.7 W h kg−1 of 499.9 k W kg−1 for 15 wt% rGO/NiO/PCL nanofiber. Moreover, rGO/NiO/PCL nanocomposite exhibited good cycle stability of 65.5 % after 1000 charge–discharge cycles. NiO/rGO/PCL nanocomposite are one of the best candidates for supercapacitor application

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