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1 dynamics simulations for the tetrahedron and octahedron.
2 roups at the equatorial plane of a single Fe octahedron.
3 ly stable M6 O21 units connected by a single octahedron.
4 rlayer space are surrounded by a regular As6 octahedron.
5 dra and two large tetrahedra that contact an octahedron.
6 lso be reversibly converted to the molecular octahedron.
7 gand substitution reactions on the molecular octahedron.
8  ligands bridge each Rh-Rh edge of a regular octahedron.
9 u(II) complexes exhibit an axially elongated octahedron.
10 )(3)) groups bridging two edges of the Ru(6) octahedron.
11 o longer distances that generate a distorted octahedron.
12 ated with an in-plane rotation of the RuO(6) octahedron.
13 ng between the cation and the halides in the octahedron.
14 er transition for the rest of the Sb-centred octahedrons.
15 ubic seeds grew into cuboctahedrons and then octahedrons.
16                   The frame is a DNA origami octahedron and can be used to fabricate clusters with va
17 tions confirm the exponential growth of both octahedron and catalyst replicas.
18 atoms are shared with the vertices of a FeO6 octahedron and of a phosphate tetrahedron.
19 t repeat tiling unit consists of one regular octahedron and six smaller regular tetrahedra.
20                               In the case of octahedron and triangle combinations, MOFs based on pyri
21 (t)(3)) group bridging one edge of the Ru(6) octahedron, and the other is a triple bridge.
22 is but also provides, for the first time, Ag octahedrons as small as 40 nm in edge length for optical
23 A structures, such as a cube and a truncated octahedron, but these DNA constructs represent regular g
24 mix of {100} and {111} facets and eventually octahedrons completely covered by {111} facets.
25                 The chromium centers possess octahedron coordination comprised of oxygen-based ligati
26 bimetallic nanoparticles (NPs) having a gold octahedron core and a palladium epitaxial shell with con
27 non-tiling Platonic solids (the tetrahedron, octahedron, dodecahedron and icosahedron) in three-dimen
28 cal cis-ordering of the two nitrides in each octahedron driven by covalency, which results in disorde
29 individual struts is not repeated in a given octahedron, each strut is uniquely addressable by the ap
30 ic in shape), we could selectively obtain Ag octahedrons enclosed by {111} facets and nanocubes/nanob
31 a 5-nm cage-like structure, an omnitruncated octahedron filled with well-ordered ice-like water molec
32 pending on the shapes of the Pd or Pt seeds: octahedrons for cuboctahedral, cubic, or octahedral seed
33 from octahedron-shaped nanoparticles, and an octahedron habit from rhombic dodecahedron-shaped nanopa
34 ology using a preassembled soluble molecular octahedron has been realized experimentally.
35 ral catenanes, such as a cube or a truncated octahedron, have been assembled from branched junctions.
36 anoclusters and high-index facet Mn3 O4 nano-octahedrons (hi-Mn3 O4 ).
37 igami nanoparticles including a tetrahedron, octahedron, icosahedron, cuboctahedron and reinforced cu
38 o various polyhedra (dodecahedron, truncated octahedron, icosahedron, truncated icosahedron).
39 lation between the distortion of the "PbBr6" octahedron in the 2D layer and the broadening of PL emis
40 4] molecular building block (MBB) with a Zn6 octahedron inscribed in a Zn8 cube.
41 n toluene affords the neutral aromatic Ga(6) octahedron L:Ga[Ga(4)Mes(4)]Ga:L (3).
42                         One displaced MoO(n) octahedron might serve as nucleation site for an inhomog
43 N-H...O-S hydrogen bonds to form a truncated octahedron, one of the Archimedean polyhedra.
44 o be enclosed by {111} facets in the form of octahedrons or thin plates, depending on the shapes of t
45 f the triangular facets of a tetrahedron, an octahedron, or an icosahedron with the T vertices and co
46  Then we construct a one-parameter family of octahedron packings that continuously spans from the fcc
47 or Pt seeds (in the shape of cuboctahedrons, octahedrons, plates, or cubes) together with a weak redu
48  the parent structure; concentration of this octahedron reconstitutes the original cuboctahedron.
49 onstruct interactions that self-replicate an octahedron, requiring a two-particle dimer for a catalys
50 space-filling polyhedrons, namely, truncated octahedrons, rhombic dodecahedrons, hexagonal prisms, cu
51     Using trilinear coupling of two types of octahedron rotation, hybrid improper ferroelectricity ha
52  approach, it is observed that the truncated octahedron shape adopted by bare Pt nanoparticles underg
53 particles, a rhombic dodecahedron habit from octahedron-shaped nanoparticles, and an octahedron habit
54 It is shown that every face of the Al(6)(2-) octahedron still possesses both pi- and sigma-aromaticit
55 nthetic oligodeoxynucleotides, folds into an octahedron structure by a simple denaturation-renaturati
56 which possesses a unique edge-sharing Ti4O17 octahedron tetramer core, is stabilized by the constrain
57       The material is built up from a TiO(6) octahedron that is linked to six IO(3) polyhedra.
58 l shapes of Platonic solids (tetrahedron and octahedron) that can be occupied by a variety of solvent
59  nearest neighbor sixfold (distorted) oxygen octahedron; the Fe-O distances, while slightly different
60 pexes of an extremely tetragonally elongated octahedron; the polyhedra share oxide vertexes.
61 e first step in this progression from an NCS octahedron to an inorganic NCS solid is the formation of
62 ahedra can be combined with a single regular octahedron to tile (complete fill) three-dimensional Euc
63 show that these polyhedral blocks--cubes and octahedrons--when mixed with spheres, promote the assemb
64 sforms this cuboctahedron into two identical octahedrons, which upon further dilution convert into fo
65 major product; X-ray diffraction shows a Cu6 octahedron with one face capped by an additional Cu.
66                                The truncated octahedron, with an interior volume of 2200 cubic angstr

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