inorganic compounds
of Al8.77Fe0.80Ni1.20Si0.23
aState Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao 066004, People's Republic of China, bHebei Key Lab for Optimizing Metal Product Technology and Performance, Yanshan University, Qinhuangdao 066004, People's Republic of China, and cSchool of Mechanical and Materials Engineering, North China University of Technology, Beijing 100144, People's Republic of China
*Correspondence e-mail: [email protected]
The Al8.77Fe0.80Ni1.20Si0.23 (aluminium iron nickel silicate) phase, obtained via high-pressure sintering of an Al-rich prealloy (nominal composition Al78.08Fe8.65Ni8.69Si4.58), is characterized as a novel phase in the Al—Si—Ni—Fe quaternary system. The obtained phase crystallizes in the space group P21/c, with lattice parameters a = 6.2093 (9), b = 6.2579 (9), c = 8.5661 (12) Å, and β = 94.877 (5)°. It is isotypic with Al9Fe0.7Ni1.28 [a = 6.2406 (1), b = 6.2993 (1), c = 8.5992 (1) Å, and β = 95.129 (1)°; Chumak et al. (2007
). Intermetallics, 15, 1416–1424] and Co2Al9 [a = 6.2163 (3), b = 6.2883 (3), c = 8.5587 (3) Å, and β = 94.772 (4)°; Boström et al. (2005
). Z. Anorg. Allg. Chem. 631, 534–541]. It features a co-occupancy of Al and Si atoms with a ratio of the refined site-occupancy factors of 0.88 (10):0.12 (10), as well a co-occupancy Ni/Fe with site-occupancy factors of 0.60 (4):0.40 (4).
Keywords: crystal structure; high-pressure; intermetallic; quaternary system.
CCDC reference: 2537011
Structure description
It has been reported that the solubility of Si in the Al9FeNi phase is approximately 4 wt% (Belov et al., 2002
), and this conclusion has been further validated by subsequent experimental investigations (Hao et al., 2014
). In the current work, the nominal composition of the intermetallic compound Al78.08Fe8.65Ni8.69Si4.58 was designed on the basis of the reported Si solubility (4 wt%) in the Al9FeNi phase. Via high-pressure sintering, laboratory experiments were carried out to investigate the formation behaviour of this phase; consequently, a crystalline intermetallic phase with a composition of Al8.77Fe0.80Ni1.20Si0.23 was successfully obtained. This phase shows remarkable structural similarities to Al9Fe0.7Ni1.3 [a = 6.2406 (1), b = 6.2993 (1), c = 8.5992 (1) Å, and β = 95.129 (1)°] reported by Chumak et al. (2007
), sharing identical space-group symmetry and analogous co-site occupancy characteristics. Al8.77Fe0.80Ni1.20Si0.23, along with Al9Fe0.7Ni1.3 and other T2Al9-type compounds (T = Co, Rh, Ir), crystallizes in the P21/c (No. 14). The atomic distribution within the of Al8.77Fe0.80Ni1.20Si0.23 is illustrated in Fig. 1
. The environment of atom Al5 is shown in Fig. 2
. It is located at special position 2a (inversion centre) and is coordinated by 12 atoms, forming the centre of a distorted icosahedron.
| Figure 1 The crystal structure of Al8.77Fe0.80Ni1.20Si0.23 (one unit cell), with displacement ellipsoids drawn at the 90% probability level. |
| | Figure 2 (a) The icosahedron formed around the Al5 atom at the 2a site and (b) the environment of the Al5 atom, with displacement ellipsoids given at the 90% probability level. [Symmetry codes: (v) −x, −y + 1, −z; (vi) x, −y + |
In this study, we refined the model of Al8.77Fe0.80Ni1.20Si0.23 based on single-crystal X-ray diffraction data. Its composition was confirmed by EDX results (see the supporting information).
Synthesis and crystallization
High-purity aluminium (indicated purity 99.9%; 0.6528 g), iron (indicated purity 99.9%; 0.1516 g), nickel (indicated purity 99.9%; 0.1579 g), and silicon (indicated purity 99.9%; 0.0416 g) with a stoichiometric ratio of 78.08:8.65:8.69:4.58 were evenly mixed and fully ground in an agate mortar for 40 min. The homogenized powder was placed in a boron nitride furnace die with a diameter of 5 mm, compacted with a small rod, and subsequently subjected to high-pressure sintering using a six-anvil high-temperature and high-pressure apparatus. Cylindrical blocks without deformation and cracks were obtained. Details of high-pressure sintering experiments using six-anvil high-temperature and high-pressure equipment are described elsewhere (Liu & Fan, 2018
). The sample was pressurized to 6 GPa and heated to 1676 K for 30 min., then cooled to 1131 K and held for 60 min., and finally rapidly cooled to room temperature by turning off the furnace power. A single crystal (0.08 × 0.07 × 0.06 mm3) was selected and mounted on a glass fibre for measurements.
Refinement
Crystal data, data collection and structure details are summarized in Table 1
. To facilitate comparative analysis, the labelling scheme and atomic coordinates for Al8.77Fe0.80Ni1.20Si0.23 were taken from the corresponding data for Al9Fe0.7Ni1.3 (Chumak et al., 2007
). The occupancy factors for Al3 and Si3 atoms sharing the same site were refined to 0.88 (10) and 0.12 (10); the occupancy factors for Ni1 and Fe1 atoms sharing the same site were refined to 0.60 (4) and 0.40 (4), respectively. The maximum and minimum residual electron densities in the final difference map are located 1.35 Å from Al4 and 0.92 Å from Al3/Si3, respectively.
|
Structural data
CCDC reference: 2537011
contains datablock I. DOI: https://doi.org/10.1107/S241431462600266X/bh4102sup1.cif
Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S241431462600266X/bh4102Isup2.hkl
EDX spectra (supplementary material). DOI: https://doi.org/10.1107/S241431462600266X/bh4102sup3.docx
| Al8.77Fe0.80Ni1.20Si0.23 | F(000) = 343 |
| Mr = 358.20 | Dx = 3.587 Mg m−3 |
| Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
| a = 6.2093 (9) Å | Cell parameters from 2687 reflections |
| b = 6.2579 (9) Å | θ = 3.3–26.8° |
| c = 8.5661 (12) Å | µ = 6.24 mm−1 |
| β = 94.877 (5)° | T = 296 K |
| V = 331.65 (8) Å3 | Lump, grey |
| Z = 2 | 0.08 × 0.07 × 0.06 mm |
| Bruker D8 Venture Photon 100 CMOS diffractometer | 606 reflections with I > 2σ(I) |
| phi and ω scans | Rint = 0.098 |
| Absorption correction: multi-scan (SADABS; Krause et al., 2015) | θmax = 27.5°, θmin = 3.3° |
| Tmin = 0.599, Tmax = 0.746 | h = −8→8 |
| 7812 measured reflections | k = −8→8 |
| 769 independent reflections | l = −11→11 |
| Refinement on F2 | 0 restraints |
| Least-squares matrix: full | Primary atom site location: dual |
| R[F2 > 2σ(F2)] = 0.037 | Secondary atom site location: difference Fourier map |
| wR(F2) = 0.070 | w = 1/[σ2(Fo2) + (0.0247P)2 + 0.9238P] where P = (Fo2 + 2Fc2)/3 |
| S = 1.08 | (Δ/σ)max < 0.001 |
| 769 reflections | Δρmax = 0.73 e Å−3 |
| 54 parameters | Δρmin = −0.68 e Å−3 |
| x | y | z | Uiso*/Ueq | Occ. (<1) | |
| Al1 | 0.0887 (2) | 0.7113 (2) | 0.22978 (17) | 0.0100 (4) | |
| Al2 | 0.2136 (2) | 0.3882 (2) | 0.04319 (17) | 0.0103 (4) | |
| Al3 | 0.4038 (2) | 0.0285 (2) | 0.26814 (17) | 0.0107 (6) | 0.88 (10) |
| Si3 | 0.4038 (2) | 0.0285 (2) | 0.26814 (17) | 0.0107 (6) | 0.12 (10) |
| Al4 | 0.6089 (2) | 0.1934 (2) | 0.00355 (17) | 0.0091 (4) | |
| Ni1 | 0.26441 (10) | 0.37995 (10) | 0.33345 (7) | 0.0071 (2) | 0.60 (4) |
| Fe1 | 0.26441 (10) | 0.37995 (10) | 0.33345 (7) | 0.0071 (2) | 0.40 (4) |
| Al5 | 0.000000 | 0.000000 | 0.000000 | 0.0140 (5) |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| Al1 | 0.0075 (8) | 0.0099 (8) | 0.0121 (8) | 0.0032 (6) | −0.0011 (6) | 0.0023 (6) |
| Al2 | 0.0095 (8) | 0.0109 (8) | 0.0104 (8) | 0.0009 (6) | 0.0006 (6) | −0.0026 (6) |
| Al3 | 0.0101 (9) | 0.0095 (9) | 0.0127 (10) | 0.0018 (6) | 0.0022 (6) | −0.0021 (6) |
| Si3 | 0.0101 (9) | 0.0095 (9) | 0.0127 (10) | 0.0018 (6) | 0.0022 (6) | −0.0021 (6) |
| Al4 | 0.0086 (7) | 0.0077 (7) | 0.0106 (8) | 0.0005 (6) | −0.0010 (6) | −0.0001 (6) |
| Ni1 | 0.0060 (4) | 0.0068 (4) | 0.0085 (4) | −0.0005 (3) | −0.0002 (2) | 0.0007 (3) |
| Fe1 | 0.0060 (4) | 0.0068 (4) | 0.0085 (4) | −0.0005 (3) | −0.0002 (2) | 0.0007 (3) |
| Al5 | 0.0151 (11) | 0.0088 (11) | 0.0196 (12) | 0.0002 (9) | 0.0115 (9) | 0.0017 (9) |
| Al1—Ni1i | 2.4521 (16) | Al3—Ni1 | 2.4456 (15) |
| Al1—Fe1 | 2.4727 (16) | Al3—Ni1vii | 2.4842 (15) |
| Al1—Ni1 | 2.4727 (16) | Al3—Al4viii | 2.706 (2) |
| Al1—Al5ii | 2.6938 (15) | Al3—Al4vii | 2.873 (2) |
| Al1—Al2 | 2.730 (2) | Al3—Al4ix | 2.878 (2) |
| Al1—Al5i | 2.7618 (15) | Al3—Al4 | 2.884 (2) |
| Al1—Al3ii | 2.787 (2) | Si3—Fe1 | 2.4456 (15) |
| Al1—Al4iii | 2.833 (2) | Si3—Al4viii | 2.706 (2) |
| Al1—Al4iv | 2.918 (2) | Si3—Al4vii | 2.873 (2) |
| Al1—Al2v | 2.938 (2) | Si3—Al4ix | 2.878 (2) |
| Al2—Fe1 | 2.4801 (17) | Si3—Al4 | 2.884 (2) |
| Al2—Ni1 | 2.4801 (17) | Al4—Ni1vii | 2.4960 (16) |
| Al2—Ni1vi | 2.4980 (16) | Al4—Ni1vi | 2.5260 (16) |
| Al2—Al3vi | 2.773 (2) | Al4—Al5x | 2.7158 (15) |
| Al2—Al5 | 2.7774 (15) | Al4—Al4viii | 2.772 (3) |
| Al2—Al4 | 2.787 (2) | Ni1—Al5i | 2.3861 (7) |
| Al2—Al4iv | 2.882 (2) | Fe1—Al5i | 2.3861 (7) |
| Al2—Al3iii | 2.894 (2) | ||
| Ni1i—Al1—Ni1 | 143.05 (6) | Ni1vii—Al4—Al1vii | 54.85 (4) |
| Ni1i—Al1—Al5ii | 55.01 (3) | Ni1vi—Al4—Al1vii | 160.56 (7) |
| Ni1—Al1—Al5ii | 151.81 (6) | Al3viii—Al4—Al1vii | 133.06 (7) |
| Ni1i—Al1—Al2 | 118.85 (7) | Al5x—Al4—Al1vii | 59.65 (4) |
| Fe1—Al1—Al2 | 56.67 (5) | Al4viii—Al4—Al1vii | 109.93 (8) |
| Ni1—Al1—Al2 | 56.67 (5) | Al2—Al4—Al1vii | 114.50 (7) |
| Al5ii—Al1—Al2 | 96.86 (6) | Ni1vii—Al4—Al3iii | 102.61 (6) |
| Ni1i—Al1—Al5i | 98.79 (5) | Ni1vi—Al4—Al3iii | 117.03 (6) |
| Fe1—Al1—Al5i | 53.90 (3) | Al3viii—Al4—Al3iii | 163.69 (7) |
| Ni1—Al1—Al5i | 53.90 (3) | Al5x—Al4—Al3iii | 114.16 (6) |
| Al5ii—Al1—Al5i | 152.94 (6) | Al4viii—Al4—Al3iii | 127.65 (8) |
| Al2—Al1—Al5i | 102.88 (6) | Al2—Al4—Al3iii | 61.48 (5) |
| Ni1i—Al1—Al3ii | 108.97 (6) | Al1vii—Al4—Al3iii | 58.46 (5) |
| Ni1—Al1—Al3ii | 105.73 (6) | Ni1vii—Al4—Al3vi | 165.23 (7) |
| Al5ii—Al1—Al3ii | 72.93 (5) | Ni1vi—Al4—Al3vi | 53.34 (4) |
| Al2—Al1—Al3ii | 111.41 (6) | Al3viii—Al4—Al3vi | 74.27 (4) |
| Al5i—Al1—Al3ii | 115.49 (6) | Al5x—Al4—Al3vi | 127.21 (6) |
| Ni1i—Al1—Al4iii | 135.55 (7) | Al4viii—Al4—Al3vi | 109.07 (8) |
| Ni1—Al1—Al4iii | 55.63 (4) | Al2—Al4—Al3vi | 58.60 (5) |
| Al5ii—Al1—Al4iii | 134.11 (6) | Al1vii—Al4—Al3vi | 139.88 (7) |
| Al2—Al1—Al4iii | 103.95 (6) | Al3iii—Al4—Al3vi | 89.98 (6) |
| Al5i—Al1—Al4iii | 58.06 (4) | Ni1vii—Al4—Al2iv | 133.30 (7) |
| Al3ii—Al1—Al4iii | 61.49 (5) | Ni1vi—Al4—Al2iv | 113.59 (6) |
| Ni1i—Al1—Al4iv | 112.10 (6) | Al3viii—Al4—Al2iv | 109.29 (6) |
| Ni1—Al1—Al4iv | 97.32 (6) | Al5x—Al4—Al2iv | 92.90 (5) |
| Al5ii—Al1—Al4iv | 57.72 (4) | Al4viii—Al4—Al2iv | 169.21 (9) |
| Al2—Al1—Al4iv | 61.25 (5) | Al2—Al4—Al2iv | 88.33 (6) |
| Al5i—Al1—Al4iv | 149.07 (6) | Al1vii—Al4—Al2iv | 80.86 (6) |
| Al3ii—Al1—Al4iv | 56.57 (5) | Al3iii—Al4—Al2iv | 57.62 (5) |
| Al4iii—Al1—Al4iv | 98.02 (6) | Al3vi—Al4—Al2iv | 60.33 (5) |
| Ni1i—Al1—Al2v | 54.31 (4) | Ni1vii—Al4—Al3 | 54.43 (4) |
| Ni1—Al1—Al2v | 109.91 (6) | Ni1vi—Al4—Al3 | 88.81 (5) |
| Al5ii—Al1—Al2v | 58.91 (4) | Al3viii—Al4—Al3 | 120.65 (6) |
| Al2—Al1—Al2v | 64.61 (6) | Al5x—Al4—Al3 | 107.72 (6) |
| Al5i—Al1—Al2v | 113.96 (6) | Al4viii—Al4—Al3 | 57.12 (6) |
| Al3ii—Al1—Al2v | 129.75 (7) | Al2—Al4—Al3 | 66.94 (5) |
| Al4iii—Al1—Al2v | 165.48 (7) | Al1vii—Al4—Al3 | 71.77 (6) |
| Al4iv—Al1—Al2v | 84.43 (6) | Al3iii—Al4—Al3 | 71.74 (4) |
| Ni1—Al2—Ni1vi | 133.95 (6) | Al3vi—Al4—Al3 | 124.64 (7) |
| Fe1—Al2—Al1 | 56.41 (5) | Al2iv—Al4—Al3 | 129.35 (7) |
| Ni1—Al2—Al1 | 56.41 (5) | Al5x—Al4—Si3 | 107.72 (6) |
| Ni1vi—Al2—Al1 | 167.97 (7) | Al4viii—Al4—Si3 | 57.12 (6) |
| Ni1—Al2—Al3vi | 145.96 (7) | Al2—Al4—Si3 | 66.94 (5) |
| Ni1vi—Al2—Al3vi | 54.99 (4) | Al1vii—Al4—Si3 | 71.77 (6) |
| Al1—Al2—Al3vi | 121.39 (7) | Al2iv—Al4—Si3 | 129.35 (7) |
| Fe1—Al2—Al5 | 97.70 (5) | Al5i—Ni1—Al3 | 134.01 (4) |
| Ni1—Al2—Al5 | 97.70 (5) | Al5i—Ni1—Al1xii | 67.65 (4) |
| Ni1vi—Al2—Al5 | 53.47 (3) | Al3—Ni1—Al1xii | 83.66 (5) |
| Al1—Al2—Al5 | 124.72 (6) | Al5i—Ni1—Al1 | 69.25 (4) |
| Al3vi—Al2—Al5 | 106.51 (6) | Al3—Ni1—Al1 | 145.68 (6) |
| Fe1—Al2—Al4 | 94.29 (6) | Al1xii—Ni1—Al1 | 85.56 (3) |
| Ni1—Al2—Al4 | 94.29 (6) | Al5i—Ni1—Al2 | 123.88 (4) |
| Ni1vi—Al2—Al4 | 56.78 (4) | Al3—Ni1—Al2 | 78.86 (5) |
| Al1—Al2—Al4 | 133.79 (7) | Al1xii—Ni1—Al2 | 75.66 (5) |
| Al3vi—Al2—Al4 | 62.33 (5) | Al1—Ni1—Al2 | 66.91 (5) |
| Al5—Al2—Al4 | 90.96 (5) | Al5i—Ni1—Al3iii | 136.46 (4) |
| Ni1—Al2—Al4iv | 98.08 (6) | Al3—Ni1—Al3iii | 86.35 (3) |
| Ni1vi—Al2—Al4iv | 115.93 (6) | Al1xii—Ni1—Al3iii | 146.76 (6) |
| Al1—Al2—Al4iv | 62.58 (5) | Al1—Ni1—Al3iii | 85.07 (5) |
| Al3vi—Al2—Al4iv | 61.04 (5) | Al2—Ni1—Al3iii | 71.32 (5) |
| Al5—Al2—Al4iv | 163.76 (6) | Al5i—Ni1—Al4iii | 67.55 (4) |
| Al4—Al2—Al4iv | 91.67 (6) | Al3—Ni1—Al4iii | 137.22 (6) |
| Ni1—Al2—Al3iii | 54.41 (4) | Al1xii—Ni1—Al4iii | 134.03 (5) |
| Ni1vi—Al2—Al3iii | 117.23 (6) | Al1—Ni1—Al4iii | 69.52 (5) |
| Al1—Al2—Al3iii | 73.08 (6) | Al2—Ni1—Al4iii | 123.48 (5) |
| Al3vi—Al2—Al3iii | 91.65 (6) | Al3iii—Ni1—Al4iii | 70.77 (5) |
| Al5—Al2—Al3iii | 134.41 (6) | Al5i—Ni1—Al2ix | 69.27 (4) |
| Al4—Al2—Al3iii | 60.72 (5) | Al3—Ni1—Al2ix | 68.24 (5) |
| Al4iv—Al2—Al3iii | 59.76 (5) | Al1xii—Ni1—Al2ix | 72.81 (5) |
| Ni1—Al2—Al1v | 144.26 (6) | Al1—Ni1—Al2ix | 137.97 (5) |
| Ni1vi—Al2—Al1v | 52.87 (4) | Al2—Ni1—Al2ix | 136.22 (4) |
| Al1—Al2—Al1v | 115.39 (6) | Al3iii—Ni1—Al2ix | 131.50 (5) |
| Al3vi—Al2—Al1v | 69.70 (5) | Al4iii—Ni1—Al2ix | 100.29 (6) |
| Al5—Al2—Al1v | 56.15 (4) | Al5i—Ni1—Al4ix | 107.72 (4) |
| Al4—Al2—Al1v | 108.67 (6) | Al3—Ni1—Al4ix | 70.71 (5) |
| Al4iv—Al2—Al1v | 107.94 (6) | Al1xii—Ni1—Al4ix | 138.31 (6) |
| Al3iii—Al2—Al1v | 161.34 (7) | Al1—Ni1—Al4ix | 133.30 (5) |
| Ni1—Al3—Ni1vii | 137.46 (7) | Al2—Ni1—Al4ix | 127.69 (5) |
| Ni1—Al3—Al4viii | 132.33 (7) | Al3iii—Ni1—Al4ix | 65.36 (5) |
| Ni1vii—Al3—Al4viii | 58.06 (4) | Al4iii—Ni1—Al4ix | 66.99 (6) |
| Ni1—Al3—Al2ix | 56.78 (4) | Al2ix—Ni1—Al4ix | 67.39 (5) |
| Ni1vii—Al3—Al2ix | 142.53 (7) | Al5i—Fe1—Si3 | 134.01 (4) |
| Al4viii—Al3—Al2ix | 147.55 (7) | Al5i—Fe1—Al1xii | 67.65 (4) |
| Ni1—Al3—Al1xi | 114.14 (6) | Al5i—Fe1—Al1 | 69.25 (4) |
| Ni1vii—Al3—Al1xi | 106.68 (6) | Si3—Fe1—Al1 | 145.68 (6) |
| Al4viii—Al3—Al1xi | 64.16 (5) | Al1xii—Fe1—Al1 | 85.56 (3) |
| Al2ix—Al3—Al1xi | 83.61 (6) | Al5i—Fe1—Al2 | 123.88 (4) |
| Ni1—Al3—Al4vii | 118.03 (6) | Si3—Fe1—Al2 | 78.86 (5) |
| Ni1vii—Al3—Al4vii | 92.11 (6) | Al1xii—Fe1—Al2 | 75.66 (5) |
| Al4viii—Al3—Al4vii | 102.15 (5) | Al1—Fe1—Al2 | 66.91 (5) |
| Al2ix—Al3—Al4vii | 61.35 (5) | Al5i—Fe1—Al4iii | 67.55 (4) |
| Al1xi—Al3—Al4vii | 60.05 (5) | Al1xii—Fe1—Al4iii | 134.03 (5) |
| Ni1—Al3—Al4ix | 55.95 (4) | Al1—Fe1—Al4iii | 69.52 (5) |
| Ni1vii—Al3—Al4ix | 98.09 (6) | Al2—Fe1—Al4iii | 123.48 (5) |
| Al4viii—Al3—Al4ix | 153.13 (6) | Al5i—Fe1—Al2ix | 69.27 (4) |
| Al2ix—Al3—Al4ix | 59.07 (5) | Al1xii—Fe1—Al2ix | 72.81 (5) |
| Al1xi—Al3—Al4ix | 141.07 (7) | Al1—Fe1—Al2ix | 137.97 (5) |
| Al4vii—Al3—Al4ix | 90.02 (6) | Al2—Fe1—Al2ix | 136.22 (4) |
| Ni1—Al3—Al4 | 92.66 (6) | Al4iii—Fe1—Al2ix | 100.29 (6) |
| Ni1vii—Al3—Al4 | 54.81 (4) | Al5i—Fe1—Al4ix | 107.72 (4) |
| Al4viii—Al3—Al4 | 59.35 (6) | Al1xii—Fe1—Al4ix | 138.31 (6) |
| Al2ix—Al3—Al4 | 148.10 (7) | Al1—Fe1—Al4ix | 133.30 (5) |
| Al1xi—Al3—Al4 | 120.99 (7) | Al2—Fe1—Al4ix | 127.69 (5) |
| Al4vii—Al3—Al4 | 146.70 (7) | Al4iii—Fe1—Al4ix | 66.99 (6) |
| Al4ix—Al3—Al4 | 97.79 (5) | Al2ix—Fe1—Al4ix | 67.39 (5) |
| Ni1—Al3—Al2vii | 115.77 (6) | Ni1vi—Al5—Ni1xii | 180.00 (4) |
| Ni1vii—Al3—Al2vii | 54.27 (4) | Ni1vi—Al5—Al1xi | 122.66 (3) |
| Al4viii—Al3—Al2vii | 106.69 (6) | Ni1xii—Al5—Al1xi | 57.34 (3) |
| Al2ix—Al3—Al2vii | 88.35 (6) | Ni1vi—Al5—Al1v | 57.34 (3) |
| Al1xi—Al3—Al2vii | 112.61 (6) | Ni1xii—Al5—Al1v | 122.66 (3) |
| Al4vii—Al3—Al2vii | 57.80 (5) | Al1xi—Al5—Al1v | 180.0 |
| Al4ix—Al3—Al2vii | 59.90 (5) | Ni1vi—Al5—Al4viii | 58.15 (3) |
| Al4—Al3—Al2vii | 98.68 (6) | Ni1xii—Al5—Al4viii | 121.85 (3) |
| Al4viii—Si3—Al2ix | 147.55 (7) | Al1xi—Al5—Al4viii | 65.28 (4) |
| Al4viii—Si3—Al1xi | 64.16 (5) | Al1v—Al5—Al4viii | 114.72 (4) |
| Al2ix—Si3—Al1xi | 83.61 (6) | Ni1vi—Al5—Al4xiii | 121.85 (3) |
| Al4viii—Si3—Al4vii | 102.15 (5) | Ni1xii—Al5—Al4xiii | 58.15 (3) |
| Al2ix—Si3—Al4vii | 61.35 (5) | Al1xi—Al5—Al4xiii | 114.72 (4) |
| Al1xi—Si3—Al4vii | 60.05 (5) | Al1v—Al5—Al4xiii | 65.28 (4) |
| Al4viii—Si3—Al4ix | 153.13 (6) | Al4viii—Al5—Al4xiii | 180.00 (3) |
| Al2ix—Si3—Al4ix | 59.07 (5) | Ni1vi—Al5—Al1xii | 123.15 (3) |
| Al1xi—Si3—Al4ix | 141.07 (7) | Ni1xii—Al5—Al1xii | 56.85 (3) |
| Al4vii—Si3—Al4ix | 90.02 (6) | Al1xi—Al5—Al1xii | 75.622 (19) |
| Fe1—Si3—Al4 | 92.66 (6) | Al1v—Al5—Al1xii | 104.378 (19) |
| Al4viii—Si3—Al4 | 59.35 (6) | Al4viii—Al5—Al1xii | 117.72 (4) |
| Al2ix—Si3—Al4 | 148.10 (7) | Al4xiii—Al5—Al1xii | 62.28 (4) |
| Al1xi—Si3—Al4 | 120.99 (7) | Ni1vi—Al5—Al1vi | 56.85 (3) |
| Al4vii—Si3—Al4 | 146.70 (7) | Ni1xii—Al5—Al1vi | 123.15 (3) |
| Al4ix—Si3—Al4 | 97.79 (5) | Al1xi—Al5—Al1vi | 104.378 (19) |
| Al4viii—Si3—Al2vii | 106.69 (6) | Al1v—Al5—Al1vi | 75.622 (19) |
| Al2ix—Si3—Al2vii | 88.35 (6) | Al4viii—Al5—Al1vi | 62.28 (4) |
| Al1xi—Si3—Al2vii | 112.61 (6) | Al4xiii—Al5—Al1vi | 117.72 (4) |
| Al4vii—Si3—Al2vii | 57.80 (5) | Al1xii—Al5—Al1vi | 180.00 (3) |
| Al4ix—Si3—Al2vii | 59.90 (5) | Ni1vi—Al5—Al2xiv | 122.74 (3) |
| Al4—Si3—Al2vii | 98.68 (6) | Ni1xii—Al5—Al2xiv | 57.26 (3) |
| Ni1vii—Al4—Ni1vi | 113.01 (6) | Al1xi—Al5—Al2xiv | 64.94 (4) |
| Ni1vii—Al4—Al3viii | 93.58 (6) | Al1v—Al5—Al2xiv | 115.06 (4) |
| Ni1vi—Al4—Al3viii | 56.57 (5) | Al4viii—Al5—Al2xiv | 91.48 (4) |
| Ni1vii—Al4—Al5x | 54.30 (3) | Al4xiii—Al5—Al2xiv | 88.52 (4) |
| Ni1vi—Al4—Al5x | 128.81 (6) | Al1xii—Al5—Al2xiv | 113.79 (4) |
| Al3viii—Al4—Al5x | 73.87 (5) | Al1vi—Al5—Al2xiv | 66.21 (4) |
| Ni1vii—Al4—Al4viii | 57.02 (5) | Ni1vi—Al5—Al2 | 57.26 (3) |
| Ni1vi—Al4—Al4viii | 55.99 (5) | Ni1xii—Al5—Al2 | 122.74 (3) |
| Al3viii—Al4—Al4viii | 63.53 (6) | Al1xi—Al5—Al2 | 115.06 (4) |
| Al5x—Al4—Al4viii | 92.61 (7) | Al1v—Al5—Al2 | 64.94 (4) |
| Ni1vii—Al4—Al2 | 120.96 (6) | Al4viii—Al5—Al2 | 88.52 (4) |
| Ni1vi—Al4—Al2 | 55.83 (5) | Al4xiii—Al5—Al2 | 91.48 (4) |
| Al3viii—Al4—Al2 | 111.57 (7) | Al1xii—Al5—Al2 | 66.21 (4) |
| Al5x—Al4—Al2 | 173.66 (7) | Al1vi—Al5—Al2 | 113.79 (4) |
| Al4viii—Al4—Al2 | 87.21 (7) | Al2xiv—Al5—Al2 | 180.0 |
| Symmetry codes: (i) −x, y+1/2, −z+1/2; (ii) x, y+1, z; (iii) −x+1, y+1/2, −z+1/2; (iv) −x+1, −y+1, −z; (v) −x, −y+1, −z; (vi) x, −y+1/2, z−1/2; (vii) −x+1, y−1/2, −z+1/2; (viii) −x+1, −y, −z; (ix) x, −y+1/2, z+1/2; (x) x+1, y, z; (xi) x, y−1, z; (xii) −x, y−1/2, −z+1/2; (xiii) x−1, y, z; (xiv) −x, −y, −z. |
Funding information
Funding for this research was provided by: The National Natural Science Foundation of China (grant No. 52173231; grant No. U23A20537); The Innovation Ability Promotion Project of Hebei supported by Hebei Key Lab for Optimizing Metal Product Technology and Performance (grant No. 22567609H).
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