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Further, we explored their implementation as electrode materials for high voltage, symmetric supercapacitors, operating in the voltage window of 0 1.8 V.
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Aluminium (Al) and iron (Fe) were selected as electrode materials.
Carbon materials from zeolitic imidazolate framework (ZIF) present poor electrochemical performance as electrode materials for supercapacitors.
Silicon carbide materials have attracted much attention in supercapacitor as electrode materials.
Transition metal oxides and hydroxides have extensively been developed as electrode materials of this type.
Nickel powders are widely used as electrode materials in multilayered ceramic capacitors.
Size and morphology affect the performance of metal oxides used as electrode materials.
This shows the potential of transition-metal oxynitrides as electrode materials of Li-ion batteries.
Clearly oxynitrides provide new opportunities as electrode materials in place of oxides.
To investigate the feasibility of oxyntrides as electrode materials for Li-ion batteries, ternary oxynitrides with lighter transition metals in high oxidation states were preferentially selected, because electrode materials are required to have a high specific capacity.
Vacuum-evaporated Al was used as electrode material (Fig. 1).
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