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      Rational design of novel dysprosium manganite sandwich layered morphology for supercapacitor applications

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          Graphene-based materials for supercapacitor electrodes – A review

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            Is Open Access

            Transition Metal Oxide Electrode Materials for Supercapacitors: A Review of Recent Developments

            In the past decades, the energy consumption of nonrenewable fossil fuels has been increasing, which severely threatens human life. Thus, it is very urgent to develop renewable and reliable energy storage devices with features of environmental harmlessness and low cost. High power density, excellent cycle stability, and a fast charge/discharge process make supercapacitors a promising energy device. However, the energy density of supercapacitors is still less than that of ordinary batteries. As is known to all, the electrochemical performance of supercapacitors is largely dependent on electrode materials. In this review, we firstly introduced six typical transition metal oxides (TMOs) for supercapacitor electrodes, including RuO 2 , Co 3 O 4 , MnO 2 , ZnO, XCo 2 O 4 (X = Mn, Cu, Ni), and AMoO 4 (A = Co, Mn, Ni, Zn). Secondly, the problems of these TMOs in practical application are presented and the corresponding feasible solutions are clarified. Then, we summarize the latest developments of the six TMOs for supercapacitor electrodes. Finally, we discuss the developing trend of supercapacitors and give some recommendations for the future of supercapacitors.
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              Perovskite synthesis, properties and their related biochemical and industrial application

              The perovskite structure is shown to be the single most versatile ceramic host. Inorganic perovskite type oxides are attractive compounds for varied applications due to its large number of compounds, they exhibit both physical and biochemical characteristics and their Nano-formulation have been utilized as catalysts in many reaction due to their sensitivity, unique long-term stability and anti-interference ability. Some perovskites materials are very hopeful applicants for the improvement of effective anodic catalysts performance. Depending Perovskite-phase metal oxides distinct variety of properties they became useful for various applications they are newly used in electrochemical sensing of alcohols, glucose, hydrogen peroxide, gases, and neurotransmitters. Perovskite organometallic halide showed efficient essential properties for photovoltaic solar cells. This review presents a full coverage of the structure, progress of perovskites and their related applications. Stress is focused particularly to different methods of perovskites properties and there related application.
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                Author and article information

                Contributors
                Journal
                Chinese Journal of Physics
                Chinese Journal of Physics
                Elsevier BV
                05779073
                October 2022
                October 2022
                : 79
                : 531-539
                Article
                10.1016/j.cjph.2022.08.020
                06c76ebb-4da4-4e7f-9a50-33debd31436f
                © 2022

                https://www.elsevier.com/tdm/userlicense/1.0/

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