Effects of electrode placement position and tilt angles of a platform on voltage induced by NaCl electrolyte flowing over graphene wafer

[Display omitted] •Voltage is induced by NaCl electrolyte solution over a two-dimensional graphene wafer.•Electrode placement position on the graphene affects the induced voltage.•Graphene wafers position reveals different number of electron collected.•The 45° tilt angle of the platform results in h...

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Bibliographic Details
Published inApplied energy Vol. 261; p. 114435
Main Authors Sun, Yu-Yuan, Mai, Van-Phung, Yang, Ruey-Jen
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 01.03.2020
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Summary:[Display omitted] •Voltage is induced by NaCl electrolyte solution over a two-dimensional graphene wafer.•Electrode placement position on the graphene affects the induced voltage.•Graphene wafers position reveals different number of electron collected.•The 45° tilt angle of the platform results in highest induced voltage.•Ionic charging/discharging time is revealed for the first time. The extraction of energy from water in the natural environment has attracted significant interest in energy-harvesting applications in recent years. This study investigates the effects of the electrode placement position and the tilt angle of a platform on the voltage induced by a flow of aqueous NaCl electrolyte solution over a two-dimensional graphene wafer. It is shown that an orthogonal arrangement of the electrodes relative to the electrolyte flow direction maximizes the induced voltage. Further experiments are performed in which the graphene wafers are positioned such that the electrolyte flows over the short and long sides of the electrodes, respectively. The results show that the higher voltage response is obtained when the electrolyte flows through the long side of the electrodes. Finally, an investigation is performed into the voltage induced for various tilt angles from 20° to 60° of the graphene wafers placed on a platform. The charging and discharging time are revealed from experiments for the first time for various tilt angles. Based on the cases studied, the 45° tilt angle induces the highest voltage. Overall, the results presented in this study provide a useful insight into the optimal electrode placement position and tilt angle of a platform for graphene energy harvesting from aqueous sodium chloride solutions.
ISSN:0306-2619
1872-9118
DOI:10.1016/j.apenergy.2019.114435