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We present an experimental investigation of the effects of surface passivation, film thickness and grain size on the plastic behavior of freestanding Cu thin films.
A 2D simulation including the effects of surface passivation, back surface field (BSF), and carrier tunneling have been performed to obtain the optical and electrical characteristics of single junction silicon, 3C SiC, and finally the tandem cells.
Effects of surface passivation and particle-substrate interfacial reaction on the size dependent 2p3/2-level shift of nanosolid Cu have been numerically analyzed, leading to information about the reactivity of Cu nanosolid with different substrates, such as graphite, polymer and alumina.
The effects of surface passivation on the photoluminescence (PL) properties of CdS nanoparticles oxidized by straightforward H2O2 injection were examined.
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Based on the failure analysis results, a synergetic effect of surface passivation by using self-assembled-monolayer (SAM) of 2-mercaptobenzothiazole (MBT) and hydrophobic conformal coating was studied.
This could indicate that there is no significant effect of surface passivation or even the cluster size on the conductivity of all the SPSNs.
This is followed by an examination of alternate means of surface passivation, with particular attention given to sulfide, chloride, and hydride termination.
It is shown that the strong quality of surface passivation is ensured by a mechanism that emits electrons from shallow donor states in the passivation layer system and therefore creates a positive field effect [55].
This experiment was performed to examine the influence of annealing on the quality of surface passivation.
We will apply GO to Si solar cells with the purpose of surface passivation.
Despite of surface passivation, this cannot eliminate nonspecific adsorption of enzymes on the MNPs completely.
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