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Li2x Al1+x P1-x Cl8: A Halide Lithium-Ion Conductor Family Derived from the AlPCl8Framework
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- Title
- Li2x Al1+x P1-x Cl8: A Halide Lithium-Ion Conductor Family Derived from the AlPCl8Framework
- Issued Date
- 2026-09
- Citation
- INORGANIC CHEMISTRY, v.65, no.37, pp.21475 - 21483
- Type
- Article
- Keywords
- DIFFUSION ; BOTTLENECK
- ISSN
- 0020-1669
- Abstract
-
Halide solid electrolytes are promising candidates for high-voltage all-solid-state batteries due to their high anodic stability. Here, we report the synthesis and characterization of lithium-containing halide solid electrolytes, Li2x Al1+x P1-x Cl8, based on the recently identified orthorhombic Pbcm structure of AlPCl8. Among the nominal compositions characterized by PXRD (x = 0.15, 0.2, 0.333, and 0.5), the x = 0.15 and 0.20 phases retain the AlPCl8-derived framework as single-phase products. The materials were prepared via stoichiometric mechanochemical synthesis followed by low-temperature annealing. Structural analysis using joint Rietveld refinements of X-ray and neutron diffraction data confirmed distorted tetrahedral interstitial lithium sites that interconnect AlCl4 and (P/Al)Cl4 polyhedra. Bond-valence site energy calculations reveal crystallographically accessible Li+ migration pathways with low local migration barriers of similar to 0.3 eV. The x = 0.20 composition exhibits an ionic conductivity of 6.3 & times; 10-7 S cm-1 at room temperature, with a negligible electronic conductivity of 1.9 & times; 10-10 S cm-1 and an apparent activation energy of similar to 1.6 eV. Despite the modest ionic transport, linear sweep voltammetry indicates a high oxidation onset at similar to 7.8 V vs In/In-Li, demonstrating high anodic stability among halide electrolytes. The large discrepancy between the calculated local barriers and the experimentally measured activation energy suggests that macroscopic Li+ transport is governed by factors beyond the intrinsic local hopping barrier. These results establish the AlPCl8-derived framework as a useful structural platform for exploring chloride-based Li+ conductors with accessible migration pathways and high oxidative stability.
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- Publisher
- AMER CHEMICAL SOC
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