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The thesis discusses a fundamental question of reconstruction on the Si(100) surface as well as three material combinations, which are important for perspective microelectronics technologies: Si/Pr2O3/Si(100), W/WNx/poly-Si/SiO2/Si(100), and CoSix/Si(100). A refined mixed ad-dimer model is developed for the Si(100)-c(4´4) reconstruction on the basis of scanning tunnelling microscopy investigations. A thermal stability of Pr2O3/Si(100) and Si/Pr2O3/Si(100) structures is studied with ion sputtering assisted Auger electron spectroscopy. The latter technique is also applied for precise determination of O and N content in the new W/WNx/poly-Si/SiO2/Si(100) structure, and to study the preferential sputtering of Si in CoSi2, CoSi, and Co2Si phases on Si(100) surface. The WSix/poly-Si/SiO2/Si(100) system, which was previously used in microelectronics, is studied for comparison. The preferential sputtering of Si in WSix is shown to be qualitatively similar as in the CoSix case.
In this work, growth and characterisation of 3C-SiC thin films, investigation of oxidation of thus prepared layers and Pr-silicate and AlON based interface with SiC have been studied. Chemical vapor deposition of 3C-SiC thin films on Si(001) and Si(111) substrates has been investigated. Prior to the actual SiC growth, preparation of initial buffer layers of SiC was done. Using such a buffer layer, epitaxial growth of 3C-SiC has been achieved on Si(111) and Si(001) substrates. The temperature of 1100°C and 1150°C has been determined to be the optimal temperature for 3C-SiC growth on Si (111) and Si(001) substrates respectively. The oxidation studies on SiC revealed that a slow oxidation process at moderate temperatures in steps was useful in reducing and suppressing the g-C at the SiO2/SiC interface. Clean, graphitefree SiO2 has been successfully grown on 3C-SiC by silicon evaporation and UHV anneal. For the application of high-k Pr2O3 on silicon carbide, plausible interlayer, Pr-Silicate and AlON, have been investigated. Praseodymium silicate has been prepared successfully completely consuming the SiO2 and simultaneously suppressing the graphitic carbon formation. A comparatively more stable interlayer using AlON has been achieved. This interlayer mainly consists of stable phases of AlN along with some amount of Pr-aluminates and CN. Such layers act as a reaction barrier between Pr2O3 and SiC, and simultaneously provide higher band offsets.