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The morphology of Cu coating changes from cauliflower-like structure to angular shape with increase in bath temperature and pH.
The morphology of Cu and Zn was different when HT673 (673 K-calcined HT) was used to prepare the catalyst.
The addition of urea into impregnated solution has been proposed to tailor the distribution and/or morphology of Cu when fabricating the Cu-based anodes by impregnation method.
This set-up allowed us to follow in situ and in real time the morphology of Cu growth on Au (001), in free and surfactant-containing solution.
The morphology of Cu nanostructures was assessed via FE-SEM; all samples exhibited a similar assembled structure and morphology of Cu nanostructures, as shown in Fig. 5.
The decomposition process is evident from thermoanalysis, and the size and morphology of Cu nanocrystals can be controlled by adjusting reaction temperature and time.
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The present work reports on tuning the morphology of Cu-MWCNT composite plate through manipulation of deposition parameters for obtaining populated CNT network within metal matrix.
The distribution of carbon nano tube (CNT) within the copper matrix and the morphology of Cu-MWCNT deposit were modified with respect to applied conditions such as quiescent, agitation and sonication employed during electrodeposition.
There is not much difference in morphology of Cu-MWCNTs and Ag-MWCNTs.
The morphologies of Cu nanostructures were examined using a field emission scanning electron microscope (FE-SEM, Hitachi SU8010, Japan) equipped with an energy dispersive X-ray spectroscope (EDS, EX-350, Horiba Scientific, Japan).
In the Triton X-100-based and Brij 56-based microemulsions, where the ω value (molar ratio of water to surfactant) was fixed at 9.0, different morphologies of Cu nanoparticles have been synthesized by gamma irradiation with different precursors (Cu(NO3 2, CuSO4, CuCl2, and CuBr2) which are shown in Fig. 10.
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