6-simplex honeycomb

6-simplex honeycomb
(No image)
TypeUniform 6-honeycomb
FamilySimplectic honeycomb
Schläfli symbol{3[7]}
Coxeter diagram
6-face types{35} , t1{35}
t2{35}
5-face types{34} , t1{34}
t2{34}
4-face types{33} , t1{33}
Cell types{3,3} , t1{3,3}
Face types{3}
Vertex figuret0,5{35}
Symmetry×2, [[3[7]]]
Propertiesvertex-transitive

In six-dimensional Euclidean geometry, the 6-simplex honeycomb is a space-filling tessellation (or honeycomb). The tessellation fills space by 6-simplex, rectified 6-simplex, and birectified 6-simplex facets. These facet types occur in proportions of 1:1:1 respectively in the whole honeycomb.

A6 lattice

This vertex arrangement is called the A6 lattice or 6-simplex lattice. The 42 vertices of the expanded 6-simplex vertex figure represent the 42 roots of the Coxeter group.[1] It is the 6-dimensional case of a simplectic honeycomb. Around each vertex figure are 126 facets: 7+7 6-simplex, 21+21 rectified 6-simplex, 35+35 birectified 6-simplex, with the count distribution from the 8th row of Pascal's triangle.

The A*
6
lattice (also called A7
6
) is the union of seven A6 lattices, and has the vertex arrangement of the dual to the omnitruncated 6-simplex honeycomb, and therefore the Voronoi cell of this lattice is the omnitruncated 6-simplex.

= dual of

Related polytopes and honeycombs

This honeycomb is one of 17 unique uniform honeycombs[2] constructed by the Coxeter group, grouped by their extended symmetry of the Coxeter–Dynkin diagrams:

A6 honeycombs
Heptagon
symmetry
Extended
symmetry
Extended
diagram
Extended
group
Honeycombs
a1[3[7]]

i2[[3[7]]] ×2

1

2

r14[7[3[7]]] ×14

3

Projection by folding

The 6-simplex honeycomb can be projected into the 3-dimensional cubic honeycomb by a geometric folding operation that maps two pairs of mirrors into each other, sharing the same vertex arrangement:

See also

Regular and uniform honeycombs in 6-space:

Notes

References

  • Norman Johnson Uniform Polytopes, Manuscript (1991)
  • Kaleidoscopes: Selected Writings of H. S. M. Coxeter, edited by F. Arthur Sherk, Peter McMullen, Anthony C. Thompson, Asia Ivic Weiss, Wiley-Interscience Publication, 1995, ISBN 978-0-471-01003-6 [1]
    • (Paper 22) H.S.M. Coxeter, Regular and Semi Regular Polytopes I, [Math. Zeit. 46 (1940) 380–407, MR 2,10] (1.9 Uniform space-fillings)
    • (Paper 24) H.S.M. Coxeter, Regular and Semi-Regular Polytopes III, [Math. Zeit. 200 (1988) 3-45]
SpaceFamily / /
E2Uniform tiling{3[3]}δ333Hexagonal
E3Uniform convex honeycomb{3[4]}δ444
E4Uniform 4-honeycomb{3[5]}δ55524-cell honeycomb
E5Uniform 5-honeycomb{3[6]}δ666
E6Uniform 6-honeycomb{3[7]}δ777222
E7Uniform 7-honeycomb{3[8]}δ888133331
E8Uniform 8-honeycomb{3[9]}δ999152251521
E9Uniform 9-honeycomb{3[10]}δ101010
E10Uniform 10-honeycomb{3[11]}δ111111
En-1Uniform (n-1)-honeycomb{3[n]}δnnn1k22k1k21