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The ZnO/CdS heterojunction was sequentially fabricated by atomic layer deposition, hydrothermal method and successive ionic layer adsorption-reaction method.
Nanostructures composited of vertical rutile TiO2 nanorod arrays and Sb2S3 nanoparticles were prepared on an F SnO2 conductive glass by hydrothermal method and successive ionic layer adsorption and reaction method at low temperature.
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Those are the successive ionic layer adsorption and reaction (SILAR) method and the successive under potential deposition (UPD) method, in which Cd and S are separately deposited on a polycrystalline Au substrate from each solution.
This fully coupled and highly nonlinear system was solved using the spectral homotopy analysis method and the successive linearisation method.
We present a scheme that combines the idea of an extragradient method and a successive iteration method as a hybrid variant.
The results indicate that both the spectral homotopy analysis method and the successive linearisation method may give accurate and convergent results using only few solution terms compared with the homotopy analysis method and the Homotopy-Padé methods.
The tradeoff, however, is that both the spectral homotopy analysis method and the successive linearisation method may involve more computations per step compared to the methods in the literature.
In this work two relatively new methods, the spectral homotopy analysis method and the successive linearisation method, have been successfully used to solve the von Kármán nonlinear equations for swirling flow with and without suction/injection across the disk walls and an applied magnetic field.
The basic solution method and its successive extensions to model the nonlinear effects are similar to the code LAMP and its various versions [Lin WM, Meinhold M, Salvesen N, Yue DKP. Large amplitude motions and wave loads for ship design. 20th ONR Sym. on Naval Hydrodynamics, Washington D.C.: National Academy Press; 1994. pp. 205 226] although their numerical implementations may differ in details.
The silicon nanowire anodes are prepared by ICP etching method of silicon and successive magnetron sputtering of metals.
Descriptions are given of the methods of separated and successive oscillatory fields and of the atomic hydrogen maser.
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