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Aliovalent Cation Substitution in Cubic Spinel Li2MgCl4 to Realize High-Conductivity, Low-Cost Chloride Solid
Taegon Jeon1,2, Sebin Park2, Dong Hun Shin2
1Institute of Sustainable Earth and Environmental Dynamics (SEED), Pukyong National University, Busan 48547, Republic of Korea.
None:
With values exceeding 1 mS cm-1, Li2Sc2/3Cl4 has the highest conductivity among spinel-type cubic chlorides, but it is not cost-effective due to the high price of Sc. In contrast, another cubic spinel, Li2MgCl4, is cost-effective but has very low conductivity of about 10-4 mS cm-1. In this first-principles study, we assessed the potential of Li2Mg1-1.5xMxCl4 (0 < x < 2/3) containing both inexpensive Mg and expensive M (= Sc and Y) as high-conductivity and low-cost cubic spinel solid electrolytes. In Li2Mg1-1.5xMxCl4, the site preference of the Li ions increases in the order of tetrahedral 48f < octahedral 16c < tetrahedral 8a < octahedral 16d, resulting in most of the Li ions occupying the 16d and 8a sites. For M = Sc (Y), the conductivity increases rapidly as x increases from 0 to 0.125, followed by a gradual increase for x > 0.125 until the highest conductivity of 1.36 mS cm-1 (6.69 mS cm-1) is reached for Li2Sc2/3Cl4 (Li2Y2/3Cl4) at x = 2/3. As x increases, the proportion of Li (Mg and Sc/Y) ions at the 16d site increases (decreases), which causes the diffusing Li+ ions to encounter Li+ ions rather than the Mg2+ or Sc3+/Y3+ ions, thereby reducing the strong cation-cation repulsion and activating the 16d → 48f → 16c jump that is important for improving conductivity. Compared with Sc, Y is considerably cheaper and has a greater conductivity-enhancing effect. This suggests that substituting an appropriate amount of Y for Mg in Li2MgCl4 can realize cubic spinel solid electrolytes that have both high conductivity and low cost.
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