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The advancement of nanostructured electrode compounds has opened up the field of polyanionic materials and Si-based composites as positive and negative electrode materials respectively.
In aprotic medium and at a Pt electrode, compounds 1-7 undergo, apart from two consecutive single-electron reversible oxidations, also two successive single-electron reductions at different potentials, involving a cathodically induced trans-to-cis isomerization, following a double square ECEC-type mechanism which was studied in detail by digital simulation of the cyclic voltammograms.
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Selectivity coefficients for the electrodes with compounds L1 and L2 are logKpotNa,Cs = −2.6 and logKpotCs,Na = −2.4, respectively.
After air drying (for up to 30 min), 5 μL of methanol was added into the glass tube, and a high voltage of 1.8 kV was applied to the electrode for compound elution and ionization.
At both electrodes, each compound exhibits a series of reduction peaks which represent sequential hydrodechlorination steps up to methane.
Thereby, the working electrode mimics these compounds and is used by certain microbes as an electron acceptor.
The compound electrode design presented in this paper increases the reverse breakdown voltage and reduces the reverse leakage current.
And this work also demonstrates the feasibility of rational design of advanced integrated compound electrode for high-performance supercapacitors.
The capacitance of the AgNW tandem compound electrode pattern grew via fringing, which increased with the pressure-induced bending applied to the surface of the sensor.
The results indicate that the graphene layers act as a significant role in the cycling performance of the compound electrode, which due to stabilizes the structure of the electrode and increases the electric conductivity.
It was found that various electrolyte compositions result in the formation and the resulting properties of the SEI of the electrodes with different compounds.
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