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High conversions of the reactants and high purities of the products were achieved.
The conversion of cyclohexane and the selectivity of the partial oxidation products were achieved to be 0.49% and 85% over 0.8 g of 3.5 wt.% V2O5/Al2O3, respectively, where the K/A ratio was 6.2.
Separation of adenine and its oxidation products were achieved using a Waters Alliance 2695 HPLC on a Phenomonex reverse-phase C18 column (250 mm × 3.0 mm).
In the normal PCR and multi-PCR system, the specific PCR products were achieved when the different concentrations of QDs were added into the PCR system.
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Reduction of methane production and increase of C5+ products was achieved by decreasing temperature, inlet H2/CO ratio and/or increasing pressure.
The complete separation of all polymerisation products was achieved by gradient HPLC.
Further characterization of the oxidation products was achieved by extending the system with online high pressure liquid chromatography (HPLC).
When the steady-state 18O labelling of products is achieved, the oxygen balance indicates the presence of 18O within a few surface layers of the catalyst.
A shift in the product pattern of C3 products was achieved, improving the ratio of 1,3-propanediol versus 3-hydroxypropionic acid up to a level of 20 1.
An acetophenone conversion of 100% with total 90% selectivity of deoxygenated products was achieved at 150 °C over this catalyst, which was more active than the active carbon (AC) or SiO2 supported Ru catalysts.
The design approach used an initial sensitivity analysis to identify key products and sections, followed by simulations to test and validate the designs until desired purities for all products are achieved.
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CEO of Professional Science Editing for Scientists @ prosciediting.com