Minimum current for detachment of electrolytic bubbles

Fuente: arXiv
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Auteurs principaux: Zhang, Yixin, Lohse, Detlef
Format: Preprint
Publié: 2023
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author Zhang, Yixin
Lohse, Detlef
author_facet Zhang, Yixin
Lohse, Detlef
contents The efficiency of water electrolysis is significantly impacted by the generation of micro- and nanobubbles on the electrodes. Here molecular dynamics simulations are used to investigate the dynamics of single electrolytic nanobubbles on nanoelectrodes. The simulations reveal that, depending on the value of current, nucleated nanobubbles either grow to an equilibrium state or grow unlimitedly and then detach. To account for these findings, the stability theory for surface nanobubbles is generalized by incorporating the electrolytic gas influx at the nanobubble's contact line and adopting a real gas law, leading to accurate predictions for the numerically observed transient growth and stationary states of the nanobubbles. With this theory, the minimum current for bubble detachment can also be analytically derived. In the detachment regime, the radius of the nanobubble first increases as $R\propto t^{1/2}$ and then as $R\propto t^{1/3}$, up to bubble detachment.
format Preprint
id arxiv_https___arxiv_org_abs_2306_10331
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Minimum current for detachment of electrolytic bubbles
Zhang, Yixin
Lohse, Detlef
Fluid Dynamics
The efficiency of water electrolysis is significantly impacted by the generation of micro- and nanobubbles on the electrodes. Here molecular dynamics simulations are used to investigate the dynamics of single electrolytic nanobubbles on nanoelectrodes. The simulations reveal that, depending on the value of current, nucleated nanobubbles either grow to an equilibrium state or grow unlimitedly and then detach. To account for these findings, the stability theory for surface nanobubbles is generalized by incorporating the electrolytic gas influx at the nanobubble's contact line and adopting a real gas law, leading to accurate predictions for the numerically observed transient growth and stationary states of the nanobubbles. With this theory, the minimum current for bubble detachment can also be analytically derived. In the detachment regime, the radius of the nanobubble first increases as $R\propto t^{1/2}$ and then as $R\propto t^{1/3}$, up to bubble detachment.
title Minimum current for detachment of electrolytic bubbles
topic Fluid Dynamics
url https://arxiv.org/abs/2306.10331