Why does water in porous carbon generate electricity? Electrokinetic role of protons in a water droplet-induced hydrovoltaic system of hydrophilic porous carbonopen access
- Authors
- Ko, Hyunseok; Son, Wonkyeong; Kang, Min Sung; Lee, Han Uk; Chung, Chan-Yeup; Han, Seungwu; Choi, Changsoon; Cho, Sung Beom
- Issue Date
- Jan-2023
- Publisher
- Royal Society of Chemistry
- Keywords
- Activation Energy; Electric Potential; Electric Power Generation; Porous Materials; Electro-kinetics; Emerging Technologies; Energy; Generate Electricity; Hydrophilics; Ion Flow; Physico-chemicals; Porous Carbons; Streaming Potential; Water Droplets; Carbon
- Citation
- Journal of Materials Chemistry A, v.11, no.3, pp 1148 - 1158
- Pages
- 11
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Materials Chemistry A
- Volume
- 11
- Number
- 3
- Start Page
- 1148
- End Page
- 1158
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/20927
- DOI
- 10.1039/d2ta05281d
- ISSN
- 2050-7488
2050-7496
- Abstract
- As emerging technology, hydrovoltaics harvests energy from water by flowing it through nanostructured materials. However, the poor understanding of the principles of hydrovoltaics has impeded its advancement. The process is complex and involves multiple simultaneous physico-chemical steps, and there has been extensive debate on aspects such as the streaming potential and ion flow. Herein, we report the first multiscale and multiphysics model for hydrovoltaic phenomena to provide in-depth interpretation and analysis of the working principles. Supported by experimental validation, this model explicitly considers the hydrodynamics in unsaturated porous media, ion transport, chemical reactions, and electrostatics. We found that protonation and ionic dynamics are the key factors for electricity generation. The difference in electric potential is mainly driven by the asymmetric proton concentration gradient, with a relatively small contribution from the streaming potential. Furthermore, the parametric effects of porosity, substrate geometry, catalytic activation energy, and room humidity were examined in detail. The results suggest a promising strategy to optimize the electrical performance of hydrovoltaic devices.
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