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Materials Data on Li2MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li4MnV3O12 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li2MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li4Mn2V5O12 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li4Mn3VO8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li3MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li2MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li3MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li2Mn2V3O12 by Materials Project

Li2V3Mn2O12 crystallizes in the orthorhombic Pbcn space group. The structure is three-dimensional. Li1+ is bonded in a 4-coordinate geometry to four O2- atoms. There are a spread of Li–O bond distances ranging from 1.94–2.03 Å. There are two inequivalent V5+ sites. In the first V5+ site, V5+ is bonded to four O2- atoms to form VO4 tetrahedra that share corners with four equivalent MnO6 octahedra. The corner-sharing octahedra tilt angles range from 22–36°. There is two shorter (1.72 Å) and two longer (1.77 Å) V–O bond length. In the second V5+ site, V5+ is bonded to four O2- atoms to form VO4 tetrahedra that share corners with four equivalent MnO6 octahedra. The corner-sharing octahedra tilt angles range from 14–45°. There are a spread of V–O bond distances ranging from 1.71–1.78 Å. Mn+3.50+ is bonded to six O2- atoms to form MnO6 octahedra that share corners with six VO4 tetrahedra. There are a spread of Mn–O bond distances ranging from 1.92–2.07 Å. There are six inequivalent O2- sites. In the first O2- site, O2- is bonded in a distorted trigonal planar geometry to one Li1+, one V5+, and one Mn+3.50+ atom. In the second O2- site, O2- is bonded in a distorted trigonal planar geometry to one Li1+, one V5+, and one Mn+3.50+ atom. In the third O2- site, O2- is bonded in a distorted trigonal non-coplanar geometry to one Li1+, one V5+, and one Mn+3.50+ atom. In the fourth O2- site, O2- is bonded in a distorted trigonal planar geometry to one Li1+, one V5+, and one Mn+3.50+ atom. In the fifth O2- site, O2- is bonded in a linear geometry to one V5+ and one Mn+3.50+ atom. In the sixth O2- site, O2- is bonded in a bent 150 degrees geometry to one V5+ and one Mn+3.50+ atom.

36 MATERIALS SCIENCE↗

Materials Data on Li2Mn3VO8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on LiMnVO4 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li2MnVO4 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li3MnV4O12 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li3MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li2Mn3VO8 by Materials Project

Li2VMn3O8 is Spinel-derived structured and crystallizes in the orthorhombic P2_12_12_1 space group. The structure is three-dimensional. there are two inequivalent Li1+ sites. In the first Li1+ site, Li1+ is bonded to four O2- atoms to form LiO4 tetrahedra that share corners with three equivalent VO6 octahedra and corners with nine MnO6 octahedra. The corner-sharing octahedra tilt angles range from 53–64°. There are a spread of Li–O bond distances ranging from 1.99–2.03 Å. In the second Li1+ site, Li1+ is bonded to four O2- atoms to form LiO4 tetrahedra that share corners with three equivalent VO6 octahedra and corners with nine MnO6 octahedra. The corner-sharing octahedra tilt angles range from 50–66°. There are a spread of Li–O bond distances ranging from 1.97–2.06 Å. V5+ is bonded to six O2- atoms to form VO6 octahedra that share corners with six LiO4 tetrahedra and edges with six MnO6 octahedra. There are a spread of V–O bond distances ranging from 1.80–2.06 Å. There are three inequivalent Mn3+ sites. In the first Mn3+ site, Mn3+ is bonded to six O2- atoms to form MnO6 octahedra that share corners with six LiO4 tetrahedra, edges with two equivalent VO6 octahedra, and edges with four MnO6 octahedra. There are a spread of Mn–O bond distances ranging from 1.91–1.98 Å. In the second Mn3+ site, Mn3+ is bonded to six O2- atoms to form MnO6 octahedra that share corners with six LiO4 tetrahedra, edges with two equivalent VO6 octahedra, and edges with four MnO6 octahedra. There are a spread of Mn–O bond distances ranging from 1.93–2.23 Å. In the third Mn3+ site, Mn3+ is bonded to six O2- atoms to form MnO6 octahedra that share corners with six LiO4 tetrahedra, edges with two equivalent VO6 octahedra, and edges with four MnO6 octahedra. There are a spread of Mn–O bond distances ranging from 1.93–2.18 Å. There are eight inequivalent O2- sites. In the first O2- site, O2- is bonded in a rectangular see-saw-like geometry to one Li1+, one V5+, and two Mn3+ atoms. In the second O2- site, O2- is bonded in a distorted rectangular see-saw-like geometry to one Li1+, one V5+, and two Mn3+ atoms. In the third O2- site, O2- is bonded in a distorted rectangular see-saw-like geometry to one Li1+ and three Mn3+ atoms. In the fourth O2- site, O2- is bonded to one Li1+, one V5+, and two Mn3+ atoms to form distorted OLiMn2V trigonal pyramids that share corners with two equivalent OLiMn2V tetrahedra, a cornercorner with one OLiMn3 trigonal pyramid, and an edgeedge with one OLiMn3 trigonal pyramid. In the fifth O2- site, O2- is bonded to one Li1+, one V5+, and two Mn3+ atoms to form distorted corner-sharing OLiMn2V tetrahedra. In the sixth O2- site, O2- is bonded to one Li1+ and three Mn3+ atoms to form a mixture of distorted corner and edge-sharing OLiMn3 trigonal pyramids. In the seventh O2- site, O2- is bonded in a distorted rectangular see-saw-like geometry to one Li1+, one V5+, and two Mn3+ atoms. In the eighth O2- site, O2- is bonded in a distorted rectangular see-saw-like geometry to one Li1+, one V5+, and two Mn3+ atoms.

36 MATERIALS SCIENCE↗

Materials Data on Li2MnV3O8 by Materials Project

Li2V3MnO8 crystallizes in the monoclinic Cm space group. The structure is three-dimensional. there are two inequivalent Li1+ sites. In the first Li1+ site, Li1+ is bonded to five O2- atoms to form LiO5 square pyramids that share a cornercorner with one VO6 octahedra, a cornercorner with one MnO6 octahedra, corners with two equivalent LiO5 square pyramids, edges with two equivalent MnO6 octahedra, edges with five VO6 octahedra, and an edgeedge with one LiO5 square pyramid. The corner-sharing octahedra tilt angles range from 2–12°. There are three shorter (2.02 Å) and two longer (2.12 Å) Li–O bond lengths. In the second Li1+ site, Li1+ is bonded to five O2- atoms to form LiO5 square pyramids that share corners with two VO6 octahedra, corners with two equivalent LiO5 square pyramids, an edgeedge with one MnO6 octahedra, edges with six VO6 octahedra, and an edgeedge with one LiO5 square pyramid. The corner-sharing octahedral tilt angles are 1°. There are a spread of Li–O bond distances ranging from 2.02–2.18 Å. There are three inequivalent V4+ sites. In the first V4+ site, V4+ is bonded to six O2- atoms to form distorted VO6 octahedra that share a cornercorner with one MnO6 octahedra, corners with three VO6 octahedra, a cornercorner with one LiO5 square pyramid, edges with two VO6 octahedra, edges with two equivalent MnO6 octahedra, and edges with four LiO5 square pyramids. The corner-sharing octahedra tilt angles range from 6–27°. There are a spread of V–O bond distances ranging from 1.79–2.14 Å. In the second V4+ site, V4+ is bonded to six O2- atoms to form distorted VO6 octahedra that share a cornercorner with one MnO6 octahedra, corners with three VO6 octahedra, a cornercorner with one LiO5 square pyramid, an edgeedge with one MnO6 octahedra, edges with three VO6 octahedra, and edges with four LiO5 square pyramids. The corner-sharing octahedra tilt angles range from 17–30°. There are a spread of V–O bond distances ranging from 1.68–2.18 Å. In the third V4+ site, V4+ is bonded to six O2- atoms to form distorted VO6 octahedra that share corners with four VO6 octahedra, a cornercorner with one LiO5 square pyramid, edges with two equivalent MnO6 octahedra, edges with three VO6 octahedra, and edges with three LiO5 square pyramids. The corner-sharing octahedra tilt angles range from 6–30°. There are a spread of V–O bond distances ranging from 1.86–2.21 Å. Mn2+ is bonded to six O2- atoms to form distorted MnO6 octahedra that share corners with two VO6 octahedra, corners with two equivalent MnO6 octahedra, a cornercorner with one LiO5 square pyramid, edges with five VO6 octahedra, and edges with three LiO5 square pyramids. The corner-sharing octahedra tilt angles range from 17–27°. There are a spread of Mn–O bond distances ranging from 2.04–2.39 Å. There are eight inequivalent O2- sites. In the first O2- site, O2- is bonded to two Li1+ and three V4+ atoms to form OLi2V3 square pyramids that share corners with three OLi2V3 square pyramids, a cornercorner with one OLi2V3 trigonal bipyramid, edges with three OLiMnV3 square pyramids, and edges with five OLiMn2V2 trigonal bipyramids. In the second O2- site, O2- is bonded to one Li1+, two V4+, and two equivalent Mn2+ atoms to form distorted OLiMn2V2 trigonal bipyramids that share a cornercorner with one OLi2MnV2 square pyramid, corners with three OLiMn2V2 trigonal bipyramids, edges with five OLi2V3 square pyramids, and edges with three OLi2V3 trigonal bipyramids. In the third O2- site, O2- is bonded in a linear geometry to two V4+ atoms. In the fourth O2- site, O2- is bonded to two equivalent Li1+ and three V4+ atoms to form OLi2V3 trigonal bipyramids that share corners with two OLi2V3 square pyramids, corners with two equivalent OLi2V3 trigonal bipyramids, edges with six OLi2V3 square pyramids, and edges with two OLiMn2V2 trigonal bipyramids. In the fifth O2- site, O2- is bonded to two equivalent Li1+, two V4+, and one Mn2+ atom to form OLi2MnV2 trigonal bipyramids that share a cornercorner with one OLi2MnV2 square pyramid, corners with three OLiMn2V2 trigonal bipyramids, edges with five OLi2V3 square pyramids, and edges with three OLiMn2V2 trigonal bipyramids. In the sixth O2- site, O2- is bonded in a distorted linear geometry to one V4+ and one Mn2+ atom. In the seventh O2- site, O2- is bonded to one Li1+, three V4+, and one Mn2+ atom to form distorted OLiMnV3 square pyramids that share corners with three OLi2V3 square pyramids, a cornercorner with one OLi2V3 trigonal bipyramid, edges with three OLi2V3 square pyramids, and edges with five OLiMn2V2 trigonal bipyramids. In the eighth O2- site, O2- is bonded to two Li1+, two equivalent V4+, and one Mn2+ atom to form OLi2MnV2 square pyramids that share corners with two equivalent OLi2MnV2 square pyramids, corners with two OLiMn2V2 trigonal bipyramids, edges with two OLi2V3 square pyramids, and edges with six OLiMn2V2 trigonal bipyramids.

36 MATERIALS SCIENCE↗

Materials Data on Li3MnV4O12 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗

Materials Data on Li2MnV3O8 by Materials Project

Computed materials data using density functional theory calculations. These calculations determine the electronic structure of bulk materials by solving approximations to the Schrodinger equation. For more information, see https://materialsproject.org/docs/calculations

36 MATERIALS SCIENCE↗