https://nova.newcastle.edu.au/vital/access/ /manager/Index en-au 5 Tailored PEDOT:PSS hole transport layer for higher performance in perovskite solar cells: Enhancement of electrical and optical properties with improved morphology https://nova.newcastle.edu.au/vital/access/ /manager/Repository/uon:46133 Thu 30 Mar 2023 17:38:21 AEDT ]]> Reaction of nitrous oxide with methane to synthesis gas: a thermodynamic and catalytic study https://nova.newcastle.edu.au/vital/access/ /manager/Repository/uon:31030 4 with N2O, particularly at higher CH4 conversions. For this purpose, key process variables, such as temperature (300 °C–550 °C) and a molar feed ratio (N2O/CH4 = 1, 3, and 5), were altered to establish the conditions for maximized H2 yield. The experimental study was conducted over the Co-ZSM-5 catalyst in a fixed bed tubular reactor and then compared with the thermodynamic equilibrium compositions, where the equilibrium composition was calculated via total Gibbs free energy minimization method. The results suggest that molar feed ratio plays an important role in the overall reaction products distribution. Generally for N2O conversions, and irrespective of N2O/CH4 feed ratio, the thermodynamic predictions coincide with experimental data obtained at approximately 475 °C–550 °C, indicating that the reactions are kinetically limited at lower range of temperatures. For example, theoretical calculations show that the H2 yield is zero in presence of excess N2O (N2O/CH4 = 5). However over a Co-ZSM-5 catalyst, and with a same molar feed ratio (N2O/CH4) of 5, the H2 yield is initially 10% at 425 °C, while above 450 °C it drops to zero. Furthermore, H2 yield steadily increases with temperature and with the level of CH4 conversion for reactions limited by N2O concentration in a reactant feed. The maximum attainable (from thermodynamic calculations and at a feed ratio of N2O/CH4 = 3) H2 yield at 550 °C is 38%, whereas at same temperature and over Co-ZSM-5, the experimentally observed yield is about 19%. Carbon deposition on Co-ZSM-5 at lower temperatures and CH4 conversion (less than 50%) was also observed. At higher temperatures and levels of CH4 conversion (above 90%), the deposited carbon is suggested to react with N2O to form CO2.]]> Sat 24 Mar 2018 07:34:52 AEDT ]]> Lowering reaction temperature: electrochemical ammonia synthesis by coupling various electrolytes and catalysts https://nova.newcastle.edu.au/vital/access/ /manager/Repository/uon:31930 Mon 09 Apr 2018 09:26:09 AEST ]]> Current advancements on charge selective contact interfacial layers and electrodes in flexible hybrid perovskite photovoltaics https://nova.newcastle.edu.au/vital/access/ /manager/Repository/uon:38284 Fri 20 Aug 2021 16:35:38 AEST ]]>