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When increasing current density from 0.2 to 0.5 mA cm−2, the capability retention improves from 32%to59%9%.
It should also be noted that the Ni-Zn-Co oxide nanowire arrays exhibit long cycle stability (88.9% of the maximum value after 10000 cycles) and good rate capability (retention of 73.8% at 32 A g−1).
As the active electrode material in supercapacitors, it exhibited a large specific capacitance (1628.1 C g−1 at a current density of 2 mA cm−2), a high rate capability (874.8 C g−1 at 50 mA cm−2), and superior cycling stability (90.54% capability retention after 5000 cycles at 10 mA cm−2).
Accordingly, the P-CSC electrode delivered a large specific capacitance (416.1 F g−1 at 1 A g−1), good rate capability (retention ratio of 80.7% from 1 to 15 A g−1), and long-term cycling stability (retention ratio of 96.9% after 10,000 cycles), outperforming the MSC, CSC, and P-MSC electrodes.
H-OH intercalated Co Al-LDHs on Ni foil shows a Co Al-LDHse on 1031 F g−1 at 1 A g−1 aNi an ultrahigh rate capability with 66% capability retention at 100 A g−1 [25].
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The hybrid material exhibits better cycling stability, greater rate capability, capacity retention and superior reversible capacity than that of bare AgNW and NG sheets.
The obtained MoS2/rGO-10 compositexhibitsts high reversible specific capacity (970 mAh g−1 at 0.1 A g−1) and rate capability (capacity retention of 64% at 3.2 A g−1).
Compared to pure Li4Ti5O12, the Li4Ti5O12/Cu composites has high rate capability, capacity retention and excellent cycling performance.
The MnO doping in the GN network plays a positive role in improving the Coulombic efficiency (92.7%) at the 1st cycle and rate capability (capacity retention (5 C/0.2 C): >70%).
It was found that the prepared Li4Ti5O12/CNTs presented an excellent rate capability and capacity retention.
Furthermore, a full-cell battery with a LiFePO4 cathode also showed high Coulombic efficiency and good capacity retention capability.
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