The Role of Energy Scales for the Structure of Ionic Liquids at Electrified Interfaces -- A Theory-Based Approach
arXiv:2112.11511 · doi:10.1021/acs.jpcb.2c00215
Abstract
Ionic liquids offer unique bulk and interfacial characteristics as battery electrolytes. Our continuum approach naturally describes the electrolyte on a macroscale. An integral formulation for the molecular repulsion,which can be quantitatively determined by both experimental and theoretical methods, models the electrolyteon the nanoscale. In this article, we perform a systematic series expansion of this integral formulation, derive a description of chemical potentials in terms of higher-order concentration gradients, and rationalize the appearance of fourth-order derivative-operators in modified Poisson equations, recently proposed in this context. In this way, we formulate a rigorous multi-scale methodology from atomistic quantum chemistry calculations to phenomenologic continuum models. We apply our generalized framework to ionic liquids near electrified interfaces and perform analytic asymptotic analysis. Three energy scales describing electrostatic forces between ions, molecular repulsion, and thermal motion determine the shape and width of the long-ranging charged double layer. We classify the charge screening mechanisms dependent on the system parameters dielectricity, ionsize, interaction strength, and temperature. We find that the charge density of electrochemical double layers in ionic liquids either decays exponentially, for negligible molecular repulsion, or oscillates continuously. Charge ordering across several ion-diameters occurs if the repulsion between molecules is comparable with thermal energy and Coulomb interaction. Eventually, phase separation of the bulk electrolyte into ionic layers emerges once the molecular repulsion becomes dominant. Our framework predicts the exact phase boundaries between these three phases as function of temperature, dielectricity and ion-sizes.
17 pages, 9 figures
References in corpus (10)
- Underscreening in concentrated electrolytes
- Local molecular field theory for effective attractions between like charged objects in systems with strong Coulomb interactions
- Transport phenomena in electrolyte solutions: Non-equilibrium thermodynamics and statistical mechanics
- The standard mean-field treatment of inter-particle attraction in classical DFT is better than one might expect
- Theory of Transport in Highly Concentrated Electrolytes
- Zinc Electrode Shape-Change in Secondary Air Batteries: A 2D Modeling Approach
- Multiple solutions of steady-state Poisson-Nernst-Planck equations with steric effects
- Electrolytes structure near electrodes with molecular size roughness
- Attractive energy and entropy or particle size: the yin and yang of physical and biological science
- Simple analysis of scattering data with Ornstein-Zernike equation
Cited by in corpus (5)
- Local volume conservation in concentrated electrolytes is governing charge transport in electric fields
- A Volume-based Description of Transport in Incompressible Liquid Electrolytes and its Application to Ionic Liquids
- Ionic liquid-electrode interface: classification of ions, saturation of layers, and structure-determined potentials
- Silicon Nanowires as Anodes for Lithium-Ion Batteries: Full Cell Modeling
- Electro-Chemo-Mechanical Model for Polymer Electrolytes