| Literature DB >> 33507088 |
Manu Gautam1, Zahid M Bhat1, Abdul Raafik1, Steven Le Vot2, Mruthunjayachari C Devendrachari1, Alagar Raja Kottaichamy1, Neethu Christudas Dargily1, Ravikumar Thimmappa1, Olivier Fontaine3, Musthafa Ottakam Thotiyl1.
Abstract
The interfacial electrochemistry of reversible redox molecules is central to state-of-the-art flow batteries, outer-sphere redox species-based fuel cells, and electrochemical biosensors. At electrochemical interfaces, because mass transport and interfacial electron transport are consecutive processes, the reaction velocity in reversible species is predominantly mass-transport-controlled because of their fast electron-transfer events. Spatial structuring of the solution near the electrode surface forces diffusion to dominate the transport phenomena even under convective fluid-flow, which in turn poses unique challenges to utilizing the maximum potential of reversible species by either electrode or fluid characteristics. We show Coulombic force gated molecular flux at the interface to target the transport velocity of reversible species; that in turn triggers a directional electrostatic current over the diffusion current within the reaction zone. In an iron-based redox flow battery, this gated molecular transport almost doubles the volumetric energy density without compromising the power capability.Entities:
Year: 2021 PMID: 33507088 DOI: 10.1021/acs.jpclett.0c03584
Source DB: PubMed Journal: J Phys Chem Lett ISSN: 1948-7185 Impact factor: 6.475