Adoor Pramitha, Hegde Shreeganesh Subraya, Bhat Badekai Ramachandra, George Sajan D, Yeenduguli Raviprakash
Semiconductor and Photovoltaics Lab, Department of Physics, Manipal Institute of Technology, Manipal Academy of Higher Education Manipal 576104 Karnataka India
Catalysis and Materials Chemistry Laboratory, Department of Chemistry, National Institute of Technology Karnataka, Surathkal Mangalore 575025 Karnataka India.
RSC Adv. 2024 Sep 18;14(41):29748-29762. doi: 10.1039/d4ra05426a.
This work presents the impact of cycling in different cationic and anionic aqueous electrolytes on the electrochemical storage performance of the MnO thin film electrode prepared using the chemical pyrolysis method. Studies on the as-deposited electrode confirmed the formation of MnO phase. Extensive electrochemical analysis was performed using NaSO, NaCl, LiSO, KSO, and MgSO electrolytes to examine the influence of cations and anions on charge storage behaviour. Considerable changes were observed in the specific capacitances owing to different ionic sizes as well as hydrated ionic radius of the electrolyte ions. Accordingly, the electrode unveiled a good performance showing a specific capacitance of around 187 F g at 0.5 A g in KSO electrolyte. Further, the electrode properties are examined after 500 CV cycles to trace the changes in the structural and morphological properties. X-ray diffraction (XRD) and Raman spectroscopic studies illustrate a partial phase transformation of electrodes from MnO to MnO irrespective of the electrolytes. These results are further corroborated with X-ray photoelectron spectroscopic (XPS) analysis where there was an increment in the oxidation state of manganese. It has been observed that the surface properties were significantly changed with cycling, as manifested by the wettability studies of the electrodes. The obtained results brings out the significance of electrolyte ions on the charge storage characteristics of MnO thin film electrodes in light of their possible application in electrochemical capacitors.
这项工作展示了在不同阳离子和阴离子水性电解质中循环对采用化学热解方法制备的MnO薄膜电极电化学存储性能的影响。对沉积态电极的研究证实了MnO相的形成。使用NaSO、NaCl、LiSO、KSO和MgSO电解质进行了广泛的电化学分析,以研究阳离子和阴离子对电荷存储行为的影响。由于电解质离子的不同离子尺寸以及水合离子半径,比电容出现了显著变化。因此,该电极在KSO电解质中于0.5 A g下展现出良好性能,比电容约为187 F g。此外,在500次循环伏安(CV)循环后对电极性能进行了检测,以追踪结构和形态性能的变化。X射线衍射(XRD)和拉曼光谱研究表明,无论使用何种电解质,电极都发生了从MnO到MnO的部分相变。X射线光电子能谱(XPS)分析进一步证实了这些结果,其中锰的氧化态有所增加。通过电极的润湿性研究发现,随着循环,表面性能发生了显著变化。鉴于MnO薄膜电极在电化学电容器中的潜在应用,所得结果揭示了电解质离子对其电荷存储特性的重要性。