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The electrodes exhibit high capacitance retention at higher current densities and good long term stability.
The memory device shows data retention at higher temperatures (85°C and 150°C) and maintains a large resistance ratio of >100; however, long-time data retention does not show to be stable.
Nafion®-MO2 (M = Zr, Si, Ti) nanocomposite membranes were synthesized with the goal of increasing the proton conductivity and water retention at higher temperatures and lower relative humidities (120 °C, 40% RHs) as well as to improve the thermo-mechanical properties.
In addition, GSA/PANI HS reveals enhanced capacitance retention at higher scan rates (76% from 5 to 500 mV s−1) and current densities (83.5% from 0.5 to 10 A g−1), demonstrating superior electrochemical accessibility of the 3D hollow nanostructure.
As stated above, polyps hosting flatworms did not exhibit enhanced prey capture, release or retention at higher prey concentrations.
Similarly, 2-min cooked carrots showed a sigmoidal disintegration at lower force and an exponential decay of weight retention at higher force.
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The electrodes showed good capacitance retention at high scan rates.
Long program/erase endurance and data retention at high temperature under low-current operation are also reported in published literature.
As a supercapacitor electrode material, MMPGC showed higher capacity retention at high current than ordered mesoporous carbon, which is characterized by cyclic voltammetry, galvanostatic charge discharge.
Carbon coated iron oxide nanoparticles (α-Fe2O3, cIO) obtained from ferrocene display very promising performance in terms of both, capacity retention at high current density and cycling stability.
Moreover, the flower-like Mn-Co oxysulfide electrode also reveals good cycling stability with 86.5% capacity retention at high current density of 20 A g−1 after 3000 cycles.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com