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Hence, a continuous decrease of resistivity is observed until Sb doping concentration ≤ 2 at.%.
The decrease of resistivity with the increase of carrier concentration resulted from Sm doping indicated that the films are n-type conductive.
A positive value of this function will give the occurrence probability of an increase of resistivity with respect to a reference resistivity value, whereas a negative value will give the occurrence probability of a decrease of resistivity.
For Ni 2p3/2 electron binding energy, the intensities of Ni2+ and Ni3+ bonding states increase with Li concentration and lead to the decrease of resistivity for the L-NiO films.
Firstly, the formation of the pores inevitably results in the increase of the resistivity of the porous material, while, secondly, the change of the metal/chalcogen ratio in behalf of metal can result both in the increase or decrease of resistivity according to p- or n-type conductivity.
We also observed a decrease of resistivity values in the whole range of temperatures that may be caused by functionalizing of GNP particles, thereby increasing the degree of dispersion and uniform distribution of GNP particles in a polymer matrix and reduce the contact resistance R k between the GNP particles.
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The lateral decreases of resistivity observed in the cross-sections may be linked to tectonic discontinuities.
It was observed that the main decreasing of resistivity occurred in a very narrow range of middle vacuum (between 100 and 10 Pa) and high vacuum was dispensable.
The presence of DOP resulted in an increase of the electrical resistivity whereas the increasing concentration of CNSL resulted in a decrease of electrical resistivity.
During hydrogen gas loading, Pd thin films exhibit an anomalous reduction of resistivity change with decreasing film thickness.
The resistivity of the Pd-decorated MoS2 films decreases with increasing the Pd thickness, and the sharp decrease of the resistivity is observed when d Pd > 5 nm.
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