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The porous electrode reduces the effective current density; thus, flat voltage profiles and stable cycling of more than 200 cycles is achieved even at a high current density of 10 mA cm−2.
A high areal capacitance of 682.8 mF cm−2 at 2 mA cm−2 and outstanding cycling performance (less than 4% capacitance fading after 10,000 cycles) is achieved by this PNC electrode.
Satisfactory prediction for combustion parameters in successive cycles is achieved, which validates the proposed methods.
Importantly, programming/erasing switching endurance for at least 100 cycles is achieved, allowing for tri-state memory storage.
The integration of cycles is achieved by having vapor uptake by the adsorbent in AD cycle, extracting from the vapor emanating from last effect of MED.
When tested as the anode material in lithium-ion batteries, a high reversible capacity of 2270 mA h g−1 after 460 cycles is achieved under a current density of 0.5 A g−1.
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A long cycling life of 30 000 cycles was achieved at a current density of 1 A g−1, with only a 9% loss in capacity.
In addition, a high energy density of 13.4 W h kg−1 at the power density of 0.40 kW kg−1 and a favorable cycling stability (95.3%, 8000 cycles) were achieved for this electrode.
The charge voltage of the corresponding Li O2 battery was reduced to below 4.1 V (V vs. Li/Li+), and a stable cycling performance over more than 100 cycles was achieved.
Superior performances with a good specific capacitance (1468 F/g), an extraordinary rate capability (64.9% capacity retention at 16 A/g) and an excellent cycling stability (85.5% retention after 5000 cycles) were achieved.
For the modified devices, the optical contrast of 57%, the coloration/bleaching switching time of 6 and 20 s, and the satisfactory cycling stability for the device after 1500 cycles are achieved by adjusting electrode surface modification.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com