| Literature DB >> 26754941 |
Anatoliy V Nedolya1, Natalya V Bondarenko2.
Abstract
Energy change of an iron face-centred cubic subnanocluster was evaluated using molecular mechanics method depending on the position of a carbon interstitial atom and substitutional atoms of nickel. Calculations of all possible positions of impurity atoms show that the energy change of the system are discrete and at certain positions of the atoms are close to continuous.In terms of energy, when all impurity atoms are on the same edge of an atomic cluster, their positions are more advantageous. The presence of nickel atoms on the edge of a cubic cluster resulted in decrease of potential barrier for a carbon atom and decrease in energy in the whole cluster. A similar drift of a carbon atom from central octahedral interstitial site to the surface in the direction <011> occurred under the influence of surface factors.Such configuration corresponds to decreasing symmetry and increasing the number of possible energy states of a subnanocluster, and it corresponds to the condition of spontaneous crystallization process in an isolated system.Taking into account accidental positions of the nickel atom in the iron cluster, such behaviour of the carbon atom can explain the mechanism of growth of a new phase and formation of new clusters in the presence of other kind of atoms because of surface influence.Entities:
Keywords: Interstitial and substitutional impurity; Molecular mechanics method; Octahedral interstice; Spontaneous growth; Subnanocluster
Year: 2016 PMID: 26754941 PMCID: PMC4709345 DOI: 10.1186/s11671-016-1239-6
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Numbering scheme of nickel atom positions in iron nanocluster
Designation of atoms positions in FCC subnanocluster
| Coordinates | [[011]] | [[001]] | [[101]] | [[111]] | [[010]] | [[000]] | [[100]] |
| Position | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
| Coordinates | [[110]] | [[½ ½ 1]] | [[0 ½ ½]] | [[½ 0 ½]] | [[½ ½ ½]] | [[½ 1 ½]] | [[½ ½ 0]] |
| Position | 8 | 9 | 10 | 11 | 12 | 13 | 14 |
Fig. 2Energy evaluation criteria of FCC subnanocluster in case carbon atom changed its position. Energy evaluation criteria of FCC subnanocluster in case carbon atom changed its position from a central octahedral interstitial site to the b surface in the direction <011>
Fig. 3Changes of equivalent positions of a nickel atom in subnanocluster at different positions of a carbon atom. Changes of nickel atom equivalent positions in subnanocluster at different positions of carbon atom, which were assessed by Δ1, Δ2 and Δ3 criteria in cases carbon atom was located: a in the central octahedral interstitial site, b at the maximum of the potential barrier and c on the surface
Cluster energy at different positions of carbon and nickel atoms
| С in CIS | N0 | u | ∆1
| Equivalent positions | N1 | |∆2| | N2 | |∆3| | N3 |
|---|---|---|---|---|---|---|---|---|---|
| 1 ÷ 8 | І | 3018 | 427 | 1 = 4 | a | 481 | a | 909 | a |
| 457 | 2 = 3 = 5 = 8 | b | 397 | b | 854 | bd | |||
| 458 | 6 = 7 | b | 397 | b | 855 | bd | |||
| 9 ÷ 14 | ІІ | 2787 | 462 | 9 = 13 | b | 400 | b | 862 | bd |
| 506 | 10 = 12 | c | 318 | cd | 824 | c | |||
| 534 | 11 = 14 | d | 315 | cd | 849 | bd |
Cluster energy at different positions of carbon and nickel atoms where numbering is performed: N —by symmetry, N —by Δ ; N —by Δ ; N —by Δ criteria
Fig. 4Scheme of changes of Δ, Δ (a) and Δ (b) cluster criteria. Scheme of Δ, Δ (a) and Δ (b) cluster criteria changes in cases positions of a nickel atom and a carbon atom changed
Fig. 5The most energetically advantageous configuration of nanocluster atoms
Quantity of states of specific energy changes and their relation to statistical criteria
| Nc | Ns | ∆u | Symbol | ∆Z | Quantity of nickel atoms in the cluster |
|---|---|---|---|---|---|
| 1 | 3 | −231 | < | 2.0 | One nickel atom |
| 2 | 6 | −160 | < | 2.0 | Two nickel atoms |
| −314 | < | 2.0 | |||
| 5 | 6 | −147 | < | 0.5 | Three nickel atoms |
| −165 | < | 0.5 | |||
| −301 | < | 0.5 | |||
| −319 | < | 0.5 | |||
| −466 | < | 0.5 |
Cluster energy at different positions of a carbon atom and a pair of nickel atoms
| Equivalent positions of the Ni atoms’ pair when a С atom occupies the CIS | N0 | u | N1 |
|---|---|---|---|
| 1,2 = 1,4 = 2,3 = 3,4 = 1,5 = 5,8 = 4,8 = 5,6 = 6,7 = 7,8 = 2,6 = 3,7 | α | 2034 | ІІІ |
| 9,13 = 9,10 = 9,12 = 9,11 = 11,14 = 12,14 = 13,14 = 10,14 = 10,11 = 10,13 = 12,13 = 11,12 | β | 1720 | І |
| 9,14 = 11,13 = 10,12 | γ | 1714 | І |
| 1,13 = 4,13 = 5,13 = 8,13 = 1,9 = 4,9 = 2,9 = 3,9 = 2,11 = 3,11 = 6,11 = 7,11 = 6,14 = 7,14 = 5,14 = 8,14 = 2,10 = 1,10 = 6,10 = 5,10 = 3,12 = 4,12 = 7,12 = 8,12 | δ | 1880 | ІІ |
| 1,3 = 2,4 = 1,8 = 4,5 = 5,7 = 6,8 = 1,6 = 2,5 = 3,8 = 4,7 | ε | 2033 | ІІІ |
| 1,7 = 4,6 = 2,8 = 3,5 | ζ | 2033 | ІІІ |
| 6,13 = 7,13 = 5,11 = 8,11 = 1,11 = 4,11 = 2,13 = 3,13 = 6,12 = 5,12 = 2,12 = 1,12 = 7,10 = 8,10 = 3,10 = 4,10 = 3,14 = 4,14 = 2,14 = 1,14 = 6,9 = 7,9 = 5,9 = 8,9 | η | 1873 | ІІ |
Cluster energy at different positions of a carbon atom and a pair of nickel atoms, where numbering is N —by symmetry, N —by energy
Fig. 6Scheme of changes by Δ, Δ (a) and Δ (b) criteria for the case of two nickel atoms in a cluster. Scheme of changes of FCC cluster-specific energy in case Ni atoms pair and a carbon atom changed their positions compared to Δ, Δ (a) and Δ (b) criteria
Fig. 7Energetically advantageous configuration of nickel atoms pair on cluster surface. Energetically advantageous configuration of nickel atoms pair at positions 1,4 with carbon atom on cluster surface
Fig. 8Scheme of cluster energy changes when changing positions of three Ni atoms. Scheme of FCC cluster energy changes when changing positions of three Ni atoms and a C atom compared to Δ, Δ (a) and Δ (b) criteria
Fig. 9Energetically advantageous configuration of three of nickel atoms on the surface. Energetically advantageous configurations of three nickel atoms at a and d positions with a carbon atom on the surface