Kinetics of oxide film growth on metal crystals - Electron tunneling and ionic diffusion.
Growth rate of oxide and other dielectric contact films on metal crystals computed for ionic diffusion and electron tunneling
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Growth rate of oxide and other dielectric contact films on metal crystals computed for ionic diffusion and electron tunneling
Spectroscopic properties of ionic beam source, discussing particle densities, source purity, etc
This chapter presents an introduction to ionic-polymer-metal composites and some mathematical modeling pertaining to them.
This paper presents an introduction to ionic-polymer-metal composites and some mathematical modeling pertaining to them.
Ionic liquids have been proposed as candidate electrolytes for high-energy density, rechargeable batteries, supercapacitors, and hybrid energy storage devices. Though Li-salt is often present in these systems, its influence on interfacial properties is largely uncharacterized. We, thereby, present an extensive computational analysis, supported by experimental comparisons, of the properties of a representative set of these electrolytesat an ideal carbon interface as a function of Li-salt doping and voltage. We have performed polarizable molecular (MD) dynamics simulations, using the APPLEP force field, to evaluate electric double layer (EDL) capacitance and distribution of Li+ in the EDL. Differential capacitance exhibits the characteristic camel profile and is insensitive to Li-doping. Li+ localizes in the second molecular layer of the EDL, which is a result of confinement from free energy barriers associated with ion layering. Joint MDelectronic structure computations show the electrochemical window of the electrolytes to be a weak function of Li-doping. Estimates of supercapacitor specific energy are made using the computed window and capacitance. The magnitude and trends in specific energy are in good agreement with experiment.
The permeation of ions through narrow water-filled channels is essential to life and of rapidly-growing importance in technology. Reaching an understanding of the mechanisms underlying the permeation process requires an interdisciplinary approach, where ideas drawn from physics are of particular importance and have brought encouraging progress in recent years. This Introduction sets into context the several ground-breaking papers presented in the Entropy Special Issue on "The Physics of Ionic Conduction in Narrow Biological and Artificial Channels''.
Electronic, ionic and atomic impact phenomena
Transport phenomena in ionic oxides with emphasis on pure and doped magnesium oxide
Study of ionospheric electron content and upper ionosphere ionic processes from satellite transmissions
Mossbauer effect and ionic character of iron atoms in orgueil and cold Bokkeveld meteorites
Ionic composition above F layer maximum from Ariel I satellite ion mass spectrometer
Interplanetary gas and solar wind plasma velocities from orientations of ionic comet tails
Dispersion relation for wave propagation in electro-magneto-ionic medium under electric and magnetic fields obtained using Maxwell- Boltzmann-Vlasov equations, discussing cut-off frequency
Ionic-molecular collisions, and collision induced dissociation of ions
Anomalous non-Hookean deformation of ionic single crystals
Ionic conductivities of solid mixtures of lithium fluoride-lithium chloride, lithium chloride- potassium chloride, lithium fluoride-sodium chloride, and sodium chloride-potassium chloride
Conduction through thin insulating films with large ionic space charge, discussing potential barrier valley
Thin film Al-titanium dioxide-Al sandwiches capacitance and conductance dependence on frequency, obtaining ionic space charge density