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Furthermore, RuO2 NF–Rh2O3 NF generated a greatly higher current induced by H2O2 reduction (i.e., enhanced sensitivity to H2O2) than bare Rh2O3 NF.
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Lastly, the covering buffer greatly increases the system conductivity, which leads to higher current value and temperature, potentially affecting the binding affinity.
Current density values are comparable with those revealed by dissolved laccase (60 μg/ml) mediated by hydroquinone and greatly higher than by the mediator less laccase/glassy carbon system.
The specific capacity and cycle life of Ni(OH 2 are greatly declined at high current density due to its P-type semiconductor structure and the mechanism of solid-phase proton diffusion.
Moreover, the rate capability of Li(Ni0.5Co0.2Mn0.3 0.99Zr0.01O2 is also greatly reinforced especially at high current density.
The potency of different siRNAs to inhibit a common target varies greatly and features affecting inhibition are of high current interest.
The adhesion between the CNT emitter and cathode substrate was greatly improved such that no detachment occurs when the emitter generates high current.
The capacity of the pristine film decreased sharply at high current densities; in contrast, the coated sample showed a greatly enhanced capacity retention.
As electrorefining process development trends towards high current density operation, having electrolytes with high conductivities will greatly reduce the energy consumption of the process.
high current density.
It also has an excellent cycling stability even at a high current density of 1C (73% retention and 96% coulombic efficiency after 150 cycles), implying that the diffusion of the polysulfides into electrolyte can be greatly inhibited.
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