Over-limiting Current and Control of Dendritic Growth by Surface Conduction in Nanopores
arXiv:1408.4202 · doi:10.1038/srep07056
Abstract
Understanding over-limiting current (faster than diffusion) is a long-standing challenge in electrochemistry with applications in desalination and energy storage. Known mechanisms involve either chemical or hydrodynamic instabilities in unconfined electrolytes. Here, it is shown that over-limiting current can be sustained by surface conduction in nano pores, without any such instabilities, and used to control dendritic growth during electrodeposition. Copper electrode posits are grown in anodized aluminum oxide membranes with polyelectrolyte coatings to modify the surface charge. At low currents, uniform electroplating occurs, unaffected by surface modification due to thin electric double layers, but the morphology changes dramatically above the limiting current. With negative surface charge, growth is enhanced along the nanopore surfaces, forming surface dendrites and nanotubes behind a deionization shock. With positive surface charge, dendrites avoid the surfaces and are either guided along the nanopore centers or blocked from penetrating the membrane.
References in corpus (1)
Cited by in corpus (13)
- Analysis of electrolyte transport through charged nanopores
- Experimental Verification of Overlimiting Current by Surface Conduction and Electro-osmotic Flow in Microchannels
- Theory of linear sweep voltammetry with diffuse charge: unsupported electrolytes, thin films, and leaky membranes
- Morphological instability during steady electrodeposition at overlimiting currents
- Linear stability analysis of transient electrodeposition in charged porous media: suppression of dendritic growth by surface conduction
- Tuning the stability of Electrochemical Interfaces by Electron Transfer reactions
- Vortices of Electro-osmotic Flow in Heterogeneous Porous Media
- Deionization Shock Driven by Electroconvection in a Circular Channel
- A sharp-interface model of electrodeposition and ramified growth
- The effect of surface transport on water desalination by porous electrodes undergoing capacitive charging
- Theory of voltammetry in charged porous media
- Transient Polarization and Dendrite Initiation Dynamics in Ceramic Electrolytes
- Growth morphology and symmetry selection of interfacial instabilities in anisotropic environments