Ahmad Farooq, Khan Muhammad Ahmed, Waqas Umer, Ramay Shahid M, Atiq Shahid
Centre of Excellence in Solid State Physics, University of the Punjab Lahore Pakistan
Institute of Molecular Physics, Polish Academy of Sciences Poznań Poland.
RSC Adv. 2023 Aug 23;13(36):25316-25326. doi: 10.1039/d3ra03140c. eCollection 2023 Aug 21.
Mixed transition metal oxides have emerged as efficient electrode materials because of their significant cycling stability, and superior capacitance values, resulting in remarkable electrochemical outputs. In this regard, SrNiO/rGO composites were synthesized using a facile solvothermal method to achieve efficient electrochemical pursuits. X-ray diffraction confirmed the formation of finely crystallized samples with the phase evolution from orthorhombic to hexagonal. Morphological studies using field emission scanning electron microscopy depicted the desired porosity in samples with well-defined shapes and sizes of homogeneously distributed grains. Elemental analysis verified the pictorial depiction of sample compositions in terms of their stoichiometric ratios. The composite sample with composition SrNiO@15%rGO exhibited superior electrochemical performance compared to other samples, depicting the highest specific capacitance of 148.09 F g at a lower scan rate of 0.005 V s observed cyclic voltammetry. In addition, the cyclability performance of SrNiO@15%rGO exhibits 68.5% capacitive retention after 10 000 cycles. The energy density as determined using a two-electrode system remained 4.375 W h kg for the first cycle which reduced to 1.875 W h kg for the 10 000 cycle, with a maximum power density of 1.25 W kg. The Nyquist plot represented less barrier to charge transfer. The electrode with particular composition SrNiO@15%rGO emerged as significant, exhibiting a superior surface capacitive charge storage, that makes it a potential candidate as an electrode material.
混合过渡金属氧化物因其显著的循环稳定性和优异的电容值而成为高效的电极材料,从而产生了卓越的电化学输出。在这方面,采用简便的溶剂热法合成了SrNiO/rGO复合材料,以实现高效的电化学研究。X射线衍射证实形成了微晶化良好的样品,其相从正交晶系演变为六方晶系。用场发射扫描电子显微镜进行的形态学研究描绘了样品中所需的孔隙率,其形状和尺寸明确,晶粒均匀分布。元素分析根据化学计量比验证了样品成分的图像描述。与其他样品相比,组成SrNiO@15%rGO的复合样品表现出优异的电化学性能,在循环伏安法中以0.005 V s的较低扫描速率观察到最高比电容为148.09 F g。此外,SrNiO@15%rGO的循环性能在10000次循环后表现出68.5%的电容保持率。使用两电极系统测定的能量密度在第一个循环时为4.375 W h kg,在第10000个循环时降至1.875 W h kg,最大功率密度为1.25 W kg。奈奎斯特图表示电荷转移的障碍较小。具有特定组成SrNiO@15%rGO的电极表现突出,具有优异的表面电容电荷存储能力,使其成为一种潜在的电极材料候选物。