Effect of Nd doping on the Physical and electrocisemical properties of MnTiO3, nanoparticles for supercapacitor applications

被引:0
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作者
Alahmari, Saeed D. [1 ]
Zahra, Tehreem [2 ]
ali, Mahmood [3 ]
机构
[1] Department of Physical Sciences, Chemistry Division, College of Science, Jazan University, P.O. Box 2097, Jazan,45142, Saudi Arabia
[2] Institute of Chemical Sciences, Bahauddin Zakariya University, Multan,60800, Pakistan
[3] Centre of Excellence in Solid State Physics, University of the Punjab, Lahore,54000, Pakistan
关键词
Electrolytes - Manganese oxide - Nanoparticles - Neodymium compounds - Perovskite - Semiconductor doping - Supercapacitor;
D O I
10.1016/j.jallcom.2024.178028
中图分类号
学科分类号
摘要
In light of the urgent challenges related to energy constraint and environmental pollution, significant focus has been directed towards supercapacitors as a viable solution. A study was carried out to find the physiochemical and electrochemical efficiency of Neodymium (Nd) doped perovskite MnTiO3 by utilizing a hydrothermal approach. Several physical characterizations were used to find the effect of Nd-doped MnTiO3. The Nd-doped MnTiO3 exhibited a specific capacitance of 1175 F g−1 with an energy density (Ed) of 53 Wh kg−1 at 1 A g−1 which disclosed stability, undergoing 5000th cycles. Overall, the testing using both physical and electrochemical methods has demonstrated the doped electrode's outstanding performance, including its enhanced crystalline structure, advantageous morphology, larger surface area and higher specific capacitance. Improvement in electrochemical activities was accredited to various aspects, such as the multivalent manganese ions, a high surface area, the large ionic radius of Nd and the porous structure that enables fast ion movement. Furthermore, the addition of Nd has enhanced the integrity of the MnTiO3 compound during cycling stability and significantly boosted electrochemical performance as found through the real time performance in two electrode system. Furthermore, the Nd-doped MnTiO3 electrode verified superior presentation while two-electrode investigation, with a recorded specific capacitance of 347.5 F g−1 at 1 A g−1, an energy density of 14.2 Wh kg−1, and a power density of 1086.2 W kg−1. Hence, Nd-doped MnTiO3 can be effectively used in future energy-storing devices. © 2024 Elsevier B.V.
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