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With the aim of obtaining TiO2-based catalytic supports with high surface area, pore volume and hydrothermal stability, in this work we study some of the synthesis parameters of the sol gel preparation of Ce-modified titania, as: hydrolysis catalyst, solvent and titania precursor.
The enzyme preparations of "CE + BG" were made up according to Zhao et al. (2012) and were further optimised by reducing enzyme dosages to 20 U (0.87 FPU) g−1 substrate CE plus 2 U g−1 substrate BG based on the steam exploded duckweed materials (Zhao et al., 2015).
In addition, in previous phases of preparation of the CE the value was "quality", the illustrative case was somewhat difficult to understand and it was also the penultimate value.
The preparation of PCR products for CE and the subsequent fragment analysis in CEQ/GeXP GAS were conducted following the supplier's instructions.
The preparation of the NiS/Pt/Ti CE using a two-step cyclic voltammetry approach is outlined below.
Preparation of cell cultures.
However, the adsorption of geminal dicarbonyl, linear and bridged CO species was demonstrated by DRIFTS; this suggested that Zr did not protect the Rh particles in the same way as that of Ce doping, even with the same preparation method.
Preparation of low-cost electrocatalytic counter electrode (CE) at low temperature is desired in the fabrication of photo-electrochemical quasi-solid state dye-sensitized solar cell (Qs-DSSC).
Studies concerning the preparation of gold phases dispersed on binary Ce-Ti oxide (Ce0.3Ti0.7O2) were performed in order to elaborate catalysts for total oxidation of VOCs.
The dose of CE used in this study was based on earlier studies conducted in our laboratory (manuscript in preparation).
In order to obtain the CeO2/TiO2 heterojunction in a very simple procedure with low cost, in this paper, the preparation of CeO2/TiO2 heterojunction is achieved by filling TiO2 NT nano-container with Ce(NO3 3 solution and then thermal decomposition of Ce(NO3 3.
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