Saber Osama, Ansari Sajid Ali, Osama Aya, Osama Mostafa
Department of Physics, College of Science, King Faisal University, P.O. Box 400, Al-Ahsa 31982, Saudi Arabia.
Egyptian Petroleum Research Institute, Nasr City, P.O. Box 11727, Cairo 11765, Egypt.
Nanomaterials (Basel). 2022 Apr 20;12(9):1404. doi: 10.3390/nano12091404.
It is well known that layered double hydroxides (LDHs) are two-dimensional (2D) layered compounds. However, we modified these 2D layered compounds to become one-dimensional (1D) nanostructures destined for high-performance supercapacitors applications. In this direction, silicon was inserted inside the nanolayers of Co-LDHs producing nanofibers of Si/Co LDHs through the intercalation of cyanate anions as pillars for building nanolayered structures. Additionally, nanoparticles were observed by controlling the preparation conditions and the silicon percentage. Scanning electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy and thermal analyses have been used to characterize the nanolayered structures of Si/Co LDHs. The electrochemical characterization was performed by cyclic voltammetry and galvanic charge-discharge technique in 2M KOH electrolyte solution using three-electrode cell system. The calculated specific capacitance results indicated that the change of morphology from nanoparticles or plates to nanofibers had a positive effect for improving the performance of specific capacitance of Si/Co LDHs. The specific capacitance enhanced to be 621.5 F g in the case of the nanofiber of Si/Co LDHs. Similarly, the excellent cyclic stability (84.5%) was observed for the nanofiber. These results were explained through the attribute of the nanofibrous morphology and synergistic effects between the electric double layer capacitive character of the silicon and the pseudo capacitance nature of the cobalt. The high capacitance of ternary Si/Co/cyanate LDHs nanocomposites was suggested to be used as active electrode materials for high-performance supercapacitors applications.
众所周知,层状双氢氧化物(LDHs)是二维(2D)层状化合物。然而,我们将这些二维层状化合物改性为一维(1D)纳米结构,用于高性能超级电容器应用。在这个方向上,通过插入氰酸根阴离子作为构建纳米层状结构的支柱,将硅插入Co-LDHs的纳米层内,制备出Si/Co LDHs纳米纤维。此外,通过控制制备条件和硅的百分比,可以观察到纳米颗粒。利用扫描电子显微镜、X射线衍射、傅里叶变换红外光谱和热分析对Si/Co LDHs的纳米层状结构进行了表征。采用三电极电池系统,在2M KOH电解液中,通过循环伏安法和恒电流充放电技术进行电化学表征。计算得到的比电容结果表明,从纳米颗粒或片状到纳米纤维的形态变化对提高Si/Co LDHs的比电容性能有积极影响。在Si/Co LDHs纳米纤维的情况下,比电容提高到621.5 F/g。同样,纳米纤维具有优异的循环稳定性(84.5%)。这些结果通过纳米纤维形态的特性以及硅的双电层电容特性与钴的赝电容特性之间的协同效应来解释。三元Si/Co/氰酸根LDHs纳米复合材料的高电容被建议用作高性能超级电容器应用的活性电极材料。