English

Fast-ion conduction and flexibility and rigidity of solid electrolyte glasses

Materials Science 2015-05-14 v1

Abstract

Electrical conductivity of dry, slow cooled (AgPO3_3)1x_{1-x}(AgI)x_x glasses is examined as a function of temperature, frequency and glass composition. From these data compositional trends in activation energy for conductivity EA_A(x), Coulomb energy Ec_c(x) for Ag+^+ ion creation, Kohlrausch stretched exponent β\beta(x), low frequency (εs\varepsilon_s(x)) and high-frequency (ε\varepsilon_\infty(x)) permittivity are deduced. All parameters except Ec_c(x) display two compositional thresholds, one near the stress transition, x = xc_c(1)= 9%, and the other near the rigidity transition, x = xc_c(2)= 38% of the alloyed glass network. These elastic phase transitions were identified in modulated- DSC, IR reflectance and Raman scattering experiments earlier. A self-organized ion hopping model (SIHM) of a parent electrolyte system is developed that self-consistently incorporates mechanical constraints due to chemical bonding with carrier concentrations and mobility. The model predicts the observed compositional variation of σ\sigma(x), including the observation of a step-like jump when glasses enter the Intermediate Phase at x>>xc_c(1), and an exponential increase when glasses become flexible at x>>xc_c(2). Since Ec_c is found to be small compared to network strain energy (Es_s), we conclude that free carrier concentrations are close to nominal AgI concentrations, and that fast-ion conduction is driven largely by changes in carrier mobility induced by an elastic softening of network structure.

Keywords

Cite

@article{arxiv.0910.4508,
  title  = {Fast-ion conduction and flexibility and rigidity of solid electrolyte glasses},
  author = {M. Micoulaut and M. Malki and D. I. Novita and P. Boolchand},
  journal= {arXiv preprint arXiv:0910.4508},
  year   = {2015}
}

Comments

11 pages, 10 figure, to appear in Physical Review B

R2 v1 2026-06-21T14:02:34.697Z