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3 Factorial Multilevel Categoric Design and a Face Centered Central Composite Design were applied to s
4 Under the optimal conditions obtained by a face-centered central composite design (FCCD), the PMT-b
7 alysis leads to asymptotic states resembling face centered cubic (FCC) and hexagonal close packed (HC
9 e cubic (SC), body centered cubic (BCC), and face centered cubic (FCC) crystal structures and show th
11 corporation into the Pd lattice, the overall face centered cubic (FCC) lattice is maintained; however
12 Recent successes in forming different shaped face centered cubic (fcc) metal nanostructures has enabl
14 he bead surface expressing a complete set of face centered cubic (fcc) surface structures represented
15 sition from cubic solid solution [denoted as face centered cubic (fcc)] structure to tetragonal inter
19 he crystal symmetry changes from a distorted face centered cubic structure to a lower symmetry orthor
20 in the high-symmetry crystal phase, such as face centered cubic structures, reducing the symmetry is
25 aller grain size, and optimized fractions of face-centered cubic (f.c.c., gamma) and hexagonal close-
26 xperimental observations with a close-packed face-centered cubic (fcc) (111), hexagonal close-packed
27 mately proved the complete transformation of face-centered cubic (fcc) Ag-NPs into monoclinic Ag(2)S-
28 vis the archetypal dislocation mechanisms in face-centered cubic (FCC) and body-centered cubic (BCC)
29 n(6)Fe(34)Co(34)Ni(6) alloy, comprising both face-centered cubic (fcc) and hexagonal closed packed (h
30 ted a multiphase structure composed of major face-centered cubic (fcc) and minor hexagonal close-pack
32 composed of a hydrogel polymerized around a face-centered cubic (fcc) array of monodisperse, highly
34 e nC60-stir was a superstructure composed of face-centered cubic (fcc) close-packing of near-spherica
35 rtion (due to its larger atomic radius) in a face-centered cubic (FCC) CoFeNi solid solution, and a c
36 -methylbenzenethiol) nanocluster featuring a face-centered cubic (fcc) core in a square shape (edge l
38 thways between body-centered cubic (bcc) and face-centered cubic (fcc) crystal structures can be enco
39 ssembly of the base-centered cubic (bcc) and face-centered cubic (fcc) crystalline nanoparticle latti
41 ination of the phonon dispersion curves in a face-centered cubic (fcc) delta-plutonium-0.6 weight % g
42 Unlike the previously synthesized disordered face-centered cubic (fcc) FePt nanoparticles with diamet
43 overcome the strength-ductility tradeoff in face-centered cubic (FCC) high-entropy alloys (HEAs).
44 dening ability and fracture toughness of the face-centered cubic (fcc) high-entropy alloys render the
45 ns of icosahedral (Ih), decahedral (Dh), and face-centered cubic (fcc) isomers within a set of popula
47 g, which is the Delaunay tessellation of the face-centered cubic (fcc) lattice, and its closely relat
49 -bridged honeycomb structure consisting of a face-centered cubic (fcc) matrix and an interwoven hexag
50 e growth is developed and applied to a model face-centered cubic (fcc) metal that undergoes phase tra
51 in plastic deformation of low stacking-fault face-centered cubic (Fcc) metals but rarely found in bod
53 into superlattice (SL) allotropes of either face-centered cubic (fcc) or body-centered cubic (bcc) s
54 local atomic structure is consistent with a face-centered cubic (fcc) or Marks decahedral arrangemen
55 izes in the space group R3 and adopts pseudo face-centered cubic (fcc) packing, whereas other MOSCs,
57 atomic volume, cerium adopts three distinct face-centered cubic (fcc) phases driven by different phy
58 hexagonal close-packed (hcp) and metastable face-centered cubic (fcc) phases, respectively, regardle
59 ing between hexagonal close-packed (hcp) and face-centered cubic (fcc) sites, was seen when the tip w
60 e nanoparticles do not show the bulk iridium face-centered cubic (fcc) structure but show decahedral
61 ditions, high-entropy alloys (HEAs) with the face-centered cubic (FCC) structure have drawn enormous
62 Among these, equatomic CrMnFeCoNi with the face-centered cubic (FCC) structure is noteworthy becaus
63 re transformation from chemically disordered face-centered cubic (fcc) structure to chemically ordere
64 noble metal typically stable as a solid in a face-centered cubic (FCC) structure under ambient condit
65 ple, LaH10 is found to adopt a sodalite-like face-centered cubic (fcc) structure, stable above 200 GP
66 re to an intermediate gamma-phase, then to a face-centered cubic (fcc) structure, while others instea
68 duced Frank loops can unveil their nature in face-centered cubic (fcc) structure: Circular loops are
69 NCs with dense ligand coverage assemble into face-centered cubic (fcc) superlattices whereas NCs with
70 structure from body-centered cubic (BCC) to face-centered cubic (FCC) through a series of body-cente
71 triggering a localized phase transition from face-centered cubic (FCC) to hexagonal close-packed (HCP
73 of this hypothesis requires the synthesis of face-centered cubic (fcc) trivalent fulleride anion salt
74 gy, simple cubic, body-centered cubic (bcc), face-centered cubic (fcc), and cesium chloride (CsCl)-ty
75 ydride nanoparticle, a structure that is not face-centered cubic (fcc), formed through coreduction of
76 c (bcc), body-centered tetragonal (bct), and face-centered cubic (fcc)--as confirmed by synchrotron s
78 h the organic linker and the metal node in a face-centered cubic (fcu) MOF, we tune the adsorption of
79 = 1,4,8,11-tetraazacyclotetradecane) afford face-centered cubic [(Me(3)tacn)(8)Mo(8)Ni(6)(CN)(24)](1
80 free from disorder, unlike the well-studied face-centered cubic A3C60 alkali metal fulleride superco
81 bute the deformation mechanism of metastable face-centered cubic alloys to unstable martensite fault
82 ndentation strain rates (10(4) s(-1)), using face-centered cubic aluminum and body-centered cubic mol
83 truncated octahedral grains into fully dense face-centered cubic and body-centered cubic "granular cr
84 nontrivial behavior due to the existence of face-centered cubic and body-centered cubic crystal stru
85 istributions are controlled by motion of the face-centered cubic and body-centered cubic phase bounda
87 e. the body-centered cubic AlCoMnNiV and the face-centered cubic CoFeMnNiZn, which are successfully s
91 the swap motion is a phonon eigenmode of the face-centered cubic crystal structure of Pb, and it is e
92 n form with the approximate periodicity of a face-centered cubic crystal, as the spontaneous product
94 k waves in three-dimensional 10-million atom face-centered cubic crystals with cross-sectional dimens
95 o this success, pure metals that freeze into face-centered cubic crystals with little to no activatio
98 ca synthesized under typical conditions is a face-centered cubic Fm3m structure with 3-dimensional he
99 ects that connect this layer to the adjacent face-centered cubic grains, we explain the geometric ori
100 preferably interact with vacant sites of the face-centered cubic lattice above the metal surface.
101 s, it has only recently been proved that the face-centered cubic lattice has the highest possible pac
103 hedral structure, which is a fragment of the face-centered cubic lattice of bulk gold with a small st
104 rystals arranged within a silica matrix in a face-centered cubic lattice with cell dimensions that ar
105 of the four possible 111 glide planes in the face-centered cubic lattice, begins with junction format
108 uring the FSA process, grains of the as-cast face-centered cubic matrix were refined by high-temperat
110 The (643) and (six four three) planes of face-centered cubic metals such as Cu have kinked and st
112 winning should thus be highly unfavorable in face-centered cubic metals with high twin-fault energy b
113 e evolution of plasticity in heavily twinned face-centered cubic metals, with the potential for optim
119 Although pristine C60 prefers to adopt a face-centered cubic packing arrangement in the solid sta
120 ody-centered cubic phase, differing from the face-centered cubic phase of both bulk solid xenon and s
121 perature between 300 K and 4800 K), only the face-centered cubic phase of platinum has been observed.
122 ticle structure from a chemically disordered face-centered cubic phase to the chemically ordered face
123 y exploiting the decreasing stability of the face-centered cubic phase with increasing Mn content, we
125 l lattice may induce distortions to form non-face-centered cubic phases when the lateral dimensions o
126 lloy, CrMnFeCoNi, which forms a single-phase face-centered cubic solid solution, and found it to have
127 lectron diffraction patterns of concentrated face-centered cubic solid solutions have been widely att
128 ll free energy difference separating it from face-centered cubic spheres usually results in phase coe
130 even though the nucleus core is dominated by face-centered cubic structure corresponding to the stabl
131 entered cubic structure to 52 GPa and in the face-centered cubic structure from 64 to 97 GPa, and stu
132 to form crystalline silver nanoparticles of face-centered cubic structure with a mean size of 10 nm.
133 [Sb(0.76)I(6)](2).25H(2)O (HSbOI), forming a face-centered cubic structure with cationic Sb(32)O(44)
135 clusters (NCs) in addition to the well-known face-centered cubic structure, including hexagonal close
136 structures in a stable single-phase HEA with face-centered cubic structure, thus resulting in enhance
142 d a strong tendency to form multiply twinned face-centered cubic superlattices with decahedral and ic
144 chanisms of room temperature rolling induced face-centered cubic titanium (fcc-Ti) in polycrystalline
145 ystal exhibits a phase transformation from a face-centered cubic to a body-centered tetragonal struct
146 pted non-close-packed structures (e.g., from face-centered cubic to body-centered cubic) and changed
148 displayed a superlattice transformation from face-centered cubic to lamellar structures, while no cle
149 cking faults, twins, transformation from the face-centered cubic to the hexagonal close-packed struct
150 e crystals, whereby a body-centered cubic to face-centered cubic transformation is found to proceed s
153 bble growth arguably applies to various FCC (face-centered cubic) metals such as Au, Ag, Ni, and Al.
154 rigins of fatigue strength in a large set of face-centered cubic, hexagonal close-packed, and body-ce
155 aining a truncated octahedral core with bulk face-centered cubic-like arrangement, yet a nanomolecule
157 alloy (MEA) featuring a fully recrystallized face-centered cubic/hexagonal close-packed dual-phase ul
158 ty in bulk nanolayered composites of a model face-centered-cubic (Cu)/body-centered-cubic (Nb) system
159 S NCs in toluene self-assemble into a single face-centered-cubic (fcc) and body-centered-cubic (bcc)
161 the transformation of Pd nanomaterials from face-centered-cubic (fcc) phase into amorphous phase wit
162 depletion of dislocations from submicrometer face-centered-cubic (FCC) pillars provides a plausible e
163 revealed, in which the original single-phase face-centered-cubic (FCC) structure partially transforms
165 oparticle ligands; these NCTs initially form face-centered-cubic (FCC) structures in solvents that ar
166 iously reported body-centered cubic (BCC) or face-centered-cubic (FCC) types, the major structure was
167 dynamics simulations, to elucidate a twinned face-centered-cubic alloy in an experiment with hardness
169 on from an ordered monoclinic structure to a face-centered-cubic arrangement of orientationally disor
173 lloy transformed upon hydrogenation into the face-centered-cubic fluorite Mg1-yTiyHx phase with favor
175 S(*)R or involves direct binding of RS(*) to face-centered-cubic or hexagonal-close-packed sites.
176 CC SLs can undergo dynamic transformation to face-centered-cubic SLs in response to post-assembly mol
177 few than three atoms energetically prefers a face-centered-cubic stacking, to serve as a nucleus of s
179 toric stress drives SC(110) orientation in a face-centered-cubic supercrystal (SC), rocksalt (RS) NPs
180 6)(SR)(24) nanocluster reveals an unexpected face-centered-cubic tetrahedral Au(28) kernel (magenta).
181 iates on two different facets of these eight face-centered-cubic transition metals, combined with a s
184 larifies some of this mystery by revealing a face-centered format in a patient with a left splenium l
185 rains of a quasicrystalline phase displaying face-centered icosahedral symmetry and low phason strain
186 mily of perovskite derivatives composed of a face-centered lattice of nearly isolated [BX6] units wit
188 ation-independent face template encoded in a face-centered reference frame, that these face-centered
189 vidence for retinotopic remapping in LIP and face-centered remapping in VIP, and weaker evidence for
190 a face-centered reference frame, that these face-centered representations are present in both the le
191 chrotron X-ray diffraction (GIXD) revealed a face-centered square grid structure with an average doma
192 ssembly of extended columns with alternating face-centered stacked structure in the solid state.
194 is paper describes a new approach for making face-centered tetragonal (fct) FePt nanoparticles with a
195 cubic (fcc) structure to chemically ordered face-centered tetragonal (fct) structure, and further pr
196 ntered cubic phase to the chemically ordered face-centered tetragonal phase and transforms the nanopa
197 nanocrystals that feature an intermetallic, face-centered tetragonal Pt-Co core and an ultrathin Pt
198 ailure to find a structure for LiBeH3 with a face-centered unit cube with edge 5.09 A, the x-ray powd