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Performance of the solid oxide fuel cell (SOFC) is significantly affected by ohmic and concentration losses.
Consequently, TiO5 appears as a non-inert support and should intervene in the catalytic performance of the solid.
Using this data and internal ballistic parameters, the performance of the solid propellant rocket motor in terms of motor pressure was achieved.
The performance of the solid propellant microthruster with Au/Ti igniter is also compared with that of a solid propellant microthruster having a wire igniter.
The performance of the solid oxide fuel cell was evaluated by investigating the effect of reaction conditions and the degree of back mixing.
The effect of the flow and chemical variables associated to the performance of the solid phase extraction procedure was investigated and optimized using a 25−1 fractional factorial design as well as Doehlert design.
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Under optimized composite polyelectrolyte containing PEO/oligo-PEG/TiO2/LiI/I2 the photovoltaic performance of the solid-state ZnO DSCs was significantly better, with an overall conversion efficiency of 1.8% under irradiation of 100 mwhich, waschigherhigher than those of the cells with PEO/TiO2/LiI/I2 (η = 1.1%) or PEO/oligo-PEG/LiI/I2 electrolyte (η = 1.5%).
The catalytic performance of the solids was studied using the selective reduction of NO with CH4.
In addition, the photoresponsivity and time performance of the solid-liquid heterojunction can also be improved by seeking for the optimized electrolyte solution.
The electrochemical tests were carried out in the half cell to investigate the improved performance of the solid-state batteries caused by the conformal coating of TiO2nts with the polymer electrolyte.
The performances of the solid oxide electrolyzer cells (SOECs) are closely tied to the designs of gas flow configurations.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com