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Hence, the presented IMC-PID gives a good performance with a specific robustness degree.
This electrode demonstrates excellent electrochemical performance with a specific discharge capacity of 86.3 mAh g−1 at 1 A g−1 in 1 M LiOH.
At −20 °C, the Li1.05Mn1.95O4 delivers a stable cycling performance with a specific capacity of 84.5 mAh g−1, being 84.1% of the capacity at room temperature.
The obtained PANi@MoS2 electrode displays a good electrochemical capacitance performance with a specific capacitance of 450 F g−1 under 0.5 M H2SO4.
The rGO/ND matrix with 10/1 ratio displayed the best performance with a specific capacitance of 186 ± 10 F g−1 and excellent cycling stability.
Based on the best thermal performance with a specific length, the effect of arm angles in terms of five different configurations of Y-shaped plates are further investigated.
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Relatively improved electrochemical performances with a specific capacity of ~200 mA h/g for at least 100 cycles, and good rate performance at current of five times of the original current have been achieved for the SnO2 nanorods@Graphene composite.
As a result, the Ni/Co-MOFs nanoflakes exhibit remarkable performances with a specific capacitance of 530.4 F g−1 at 0.5 A g−1 in 1 M LiOH aqueous solution, 1.72 and 3.15 times higher than that of Ni-MOF nanoflakes (306.8 F g−1) and ZIF-67 (168.3 F g−1), respectively; good rate capability and robust cycling performance with no capacity fading after 2000 cycles.
When applied in supercapacitors and the ORR, the Ni/Co-MOF exhibits remarkable performances with a specific capacitance of 530.4 F g−1 at 0.5 A g−1 (higher than that of Ni-MOF (306.8 F g−1) and ZIF-67 (168.3 F g−1)), good rate capability, and robust cycling performance with no capacity fading after 2000 cycles.
The MnO2/RGO composites showed excellent electrochemical performance with a highest specific capacitance of about 330 F.g−1.
The capacitance retention of ∼120% after 104 cycles shows that a Ag/Co3O4/3DG hybrid can provide a long and stable cycle performance with a high specific capacitance.
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