2019
DOI: 10.1002/zaac.201900228
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Polyanionic Frameworks in the Lithium Phosphidogermanates Li2GeP2 and LiGe3P3 – Synthesis, Structure, and Lithium Ion Mobility

Abstract: Recently fast lithium ion conductors were discovered in compounds containing tetrahedral SiP48– and GeP48– units. In the context of material development for all solid state batteries the ternary Li/Ge/P phase system has been further investigated and two new lithium phosphidogermanates were discovered on the lithium poor side of the ternary composition diagram. Li2GeP2 crystallizes in space group I41/acd with unit cell parameters of a = 12.3069(1) Å and c = 19.0306(4) Å, consists of a framework of Ge4P10 suprat… Show more

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Cited by 16 publications
(24 citation statements)
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References 27 publications
(33 reference statements)
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“…The (Al 0.5 Ta 0.5 )P 4 tetrahedra in Na 10 AlTaP 6 are slightly distorted with a narrow P3À (Ta/Al)À P3 angle of 101.468 (7)°due to the repulsion between the highly charged central atoms; the remaining angles range from 108.037(8)°to 114.167 (8)°and are closer to the ideal tetrahedron angle. The (Al/Ta)À P bond lengths range from 2.4055(2) to 2.4410(2) Å and are between TaÀ P distances in compounds with isolated TaP 4 tetrahedra like Na 7 TaP 4 , [41] Na 5 SrTaP 4 (2.3856-2.4108 Å), [42] Na 5.15 Eu 0.85 TaP 4 (2.378(5)-2.399(2) Å) [43] or K 5 BaTaP 4 (2.3980(1)-2.4115(1) Å), [44] and AlÀ P distances in compounds with isolated AlP 4 tetrahedra like Li 9 AlP 4 (2.425(1) and 2.433(1) Å).…”
Section: Resultsmentioning
confidence: 95%
See 1 more Smart Citation
“…The (Al 0.5 Ta 0.5 )P 4 tetrahedra in Na 10 AlTaP 6 are slightly distorted with a narrow P3À (Ta/Al)À P3 angle of 101.468 (7)°due to the repulsion between the highly charged central atoms; the remaining angles range from 108.037(8)°to 114.167 (8)°and are closer to the ideal tetrahedron angle. The (Al/Ta)À P bond lengths range from 2.4055(2) to 2.4410(2) Å and are between TaÀ P distances in compounds with isolated TaP 4 tetrahedra like Na 7 TaP 4 , [41] Na 5 SrTaP 4 (2.3856-2.4108 Å), [42] Na 5.15 Eu 0.85 TaP 4 (2.378(5)-2.399(2) Å) [43] or K 5 BaTaP 4 (2.3980(1)-2.4115(1) Å), [44] and AlÀ P distances in compounds with isolated AlP 4 tetrahedra like Li 9 AlP 4 (2.425(1) and 2.433(1) Å).…”
Section: Resultsmentioning
confidence: 95%
“…Illustrative examples of this manifold structural variety are Li 10 Si 2 P 6 , which features edgesharing SiP 4 double tetrahedra, [6] Li 2 SiP 2 /Li 2 GeP 2 and LiSi 2 P 3 , [7][8][9] where SiP 4 and GeP 4 tetrahedra are condensed to a network of super-tetrahedra, Li 3 Si 3 P 7 with double layers formed by vertexsharing SiP 4 tetrahedra, [6] and LiGe 3 P 3 with a two-dimensional polyanion comprising GeP 4 and Ge(P 3 Ge) tetrahedra. [8] A formally aliovalent substitution of the tetrel by a triel element leads to the lithium phosphidotrielates Li 3 AlP 2 and Li 3 GaP 2 which contain two-dimensional layers of corner-and edge-sharing tetrahedra, [4,10] whereas the corresponding Li 3 InP 2 shows a polyanionic framework of corner-sharing InP 4 supertetrahedra. [11] While lithium-based phosphides have already been studied intensively, much less is reported about the corresponding sodium species.…”
Section: Introductionmentioning
confidence: 99%
“…In other ternary Li/Ge/P compounds with tetrahedral units, crystallographically different Li atoms are not distinguishable in the Li NMR spectra. [30][31]33,[37][38][39]45] Compared to the upfield signal with a half width of only 281 Hz the much wider constituents of the larger signal show half widths of 1627, 634 and 861 Hz from downfield to upfield, respectively, indicating a larger disorder in these sites. However, since distinct signals can be observed, an exchange of Li atoms between the different sites seems to be unlikely or slow.…”
Section: Si 31 P and 7 LI Mas Nmr Spectramentioning
confidence: 99%
“…They exhibit low electronic conductivities, but Li-ionic conductivities of up to 10 À 3 S/ cm. [30][31][32][33][37][38][39] These differences can be explained by different structural motifs occurring in these compounds. While the herein reported compounds form isolated, homoatomic anions as they occur in binary Li-rich silicides, the previously reported compounds of these element combinations form almost exclusively heteroatomic phosphidotetrelate units with covalent SiÀ P bonds.…”
Section: Electric Conductivity Of LI 1068(8) Si 5 Pmentioning
confidence: 99%
“…Metal tetrel‐pnictides ( A‐TtPn , A =electropositive metal, Tt =Si, Ge and Sn, Pn =P and As) are a large family of compounds showing a variety of crystal structures and atom connectivity, and exhibiting exciting transport, magnetic, and optical properties [1–9] . The underlying Tt‐Pn anionic sublattice can range from isolated TtPn 4 tetrahedra (Ca 4 SiP 4 , Sr 4 SiP 4 , Ba 4 SiP 4 , Li 8 SiP 4 and Li 8 GeP 4 ), 1D‐chains (Ca 3 Si 2 P 4 and K 2 SiP 2 ), 2D‐layers (LiGe 3 P 3 , LiGe 3 As 3 , Cs 0.16 SiAs 2 , Ca 2 Si 2 P 4 , Li 1‐x Sn 2 As 2 ), to 3D‐frameworks (Li 2 GeP 2 , SrSi 7 P 10 , BaSi 7 P 10 , Li 2 SiP 2 , LiSi 3 As 6 , MgSiAs 2 , Mg 3 Si 6 As 8 , and Ca 3 Si 8 P 14 ) [2,7,10–24] . The tetrel‐pnictide tetrahedral unit can be connected to its neighbors via sharing vertices and edges, or by P−P bonds [1,13,25–27] …”
Section: Introductionmentioning
confidence: 99%