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This may be explained with desorption of adsorbed inhibitor molecules on the MS surface.
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The difference has been explained with a model of chemical absorption: when the diffusion time is high, direct reaction of phosgene with water in a very thin layer near the interface results in the formation and desorption of carbon dioxide.
One important conclusion from this work is that changes in the adsorption equilibrium constant with methanol cannot be explained by desorption rates only, and thus changes in the energy barrier to adsorption must be considered.
The organics that belong to Group (I) are rather volatile and TGA curves can be explained by equdibrium desorption model.
The mobilizations of Al and Mn could be explained by a combination of desorption and the dissolution of hydroxides.
This result can be explained by the generally lower desorption temperature of CO on Pd hkl).
The variations in the temperature of O2 desorption during TPD could be explained by electronic interaction with the transition metal.
The effect can be explained by a decreasing rate of water desorption from the tubes and electrodes resulting in a reduced probability for water cluster ion formation.
This can be explained by a combined effect of migration and desorption of indium atoms on the patterned and planar areas.
The phenomenon of non-closure of adsorption and desorption can be observed from the isotherms which can be explained as follows.
The non-closure of the adsorption and desorption patterns can be seen from the figure, which may be explained as follows.
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