inorganic compounds\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

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ISSN: 2414-3146

(Al13.28Si2.72)(Fe1.19Ni2.81)

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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]

Edited by M. Weil, Vienna University of Technology, Austria (Received 28 October 2025; accepted 19 November 2025; online 21 November 2025)

The inter­metallic phase (Al13.28Si2.72)(Fe1.19Ni2.81) was obtained by high-pressure sinter­ing (HPS) of a mixture with an elemental atomic ratio corresponding to (Al,Si)5(Fe,Ni). The space group was determined to be C2/m with Z = 2. The structure model contains three co-occupied sites with occupancy ratios of Si:Al = 0.679:0.321, Ni:Fe = 0.46:0.54 and Ni:Fe = 0.94:0.06, and five sites with full occupancy of Al atoms.

3D view (loading...)
[Scheme 3D1]

Structure description

In the quaternary Al–Si–Ni–Fe near-eutectic alloy, an (Al,Si)5(Fe,Ni) phase exists, which adopts the tetra­gonal (Al2.7Si2.3)Fe structure type. The reported composition is based on TEM-EDX point analysis with atomic percentages of 77.1 (Al), 6.5 (Si), 8.6 (Fe) and 7.8 (Ni) (Cai et al., 2023View full citation). It has been confirmed through first-principles calculations that the Si sites tend to be co-occupied by Al atoms and are adjacent to the Fe atoms; the co-occupied atoms have stable configurations (Cai et al., 2023View full citation). The growth mechanism of this inter­metallic phase under high-pressure and high-temperature (HPHT) conditions was investigated by the high-pressure sinter­ing (HPS) process, which eventually led to a new phase with composition (Al13.28Si2.72)(Fe1.19Ni2.81) in the quaternary Al–Si–Ni–Fe system. The title phase and the Al13Fe4 phase (Grin et al., 1994View full citation) both crystallize in space group type C2/m, however without close relationship. The deca­gonal quasicrystal approximant Al76Ni9Fe15, studied by Nejadsattari et al. (2016View full citation) in the Al–Ni–Fe ternary system, is isotypic with Al13Fe4, where Fe and Ni atoms co-occupy 4i and 8j sites.

The asymmetric unit of (Al13.28Si2.72)(Fe1.19Ni2.81) comprises eight sites: five are fully occupied by Al atoms at Wyckoff sites 8j (Al2), 4g (Al3), and 4i (Al4, Al5, Al6); one site (8j) is partially occupied by Si1 (occupancy 0.679) and Al1 (occupancy 0.321) atoms; one site (4i) is partially occupied by Ni1 (occupancy 0.46) and Fe1 (occupancy 0.54) atoms; one site (4h) is partially occupied by Ni2 (occupancy 0.94) and Fe2 (occupancy 0.06). The Al4 atom at the 4i site and the (Fe,Ni)2 atoms at the co-occupied 4h site are surrounded by twelve and ten atoms, forming distorted 19-face and 16-face polyhedra, respectively (Figs. 1[link]–3[link][link]).

[Figure 1]
Figure 1
The crystal structure of (Al13.28Si2.72)(Fe1.19Ni2.81) with two Al4 atoms on the 4i site and two (Fe,Ni)2 atoms on the 4h site displayed with their coordination environments as polyhedra.
[Figure 2]
Figure 2
(a) The enneadeca­hedron formed around the Al4 atom at the 4i site; (b) the environment of the Al4 atom with displacement ellipsoids given at the 80% probability level. [Symmetry codes: (i) x, −y + 1, z; (viii) −x + Mathematical equation, −y + Mathematical equation, −z; (xi) x, y, z − 1; (xii) −x + Mathematical equation, y + Mathematical equation, −z; (xiii) x, −y + 1, z − 1.]
[Figure 3]
Figure 3
(a) The hexa­deca­hedron formed around the (Fe,Ni)2 atoms at the 4h site; (b) the environment of the (Fe,Ni)2 atoms with displacement ellipsoids given at the 90% probability level. [Symmetry codes: (ii) x, y, z + 1; (iv) −x + Mathematical equation, −y + Mathematical equation, −z + 1; (v) −x + 1, y, −z + 1; (vi) x − Mathematical equation, y − Mathematical equation, z; (vii) −x + 1, −y + 1, −z + 1.]

Synthesis and crystallization

The high purity elements aluminium (indicated purity 99.9%; 0.6739 g), iron (indicated purity 99.9%; 0.1442 g), nickel (indicated purity 99.9%; 0.1566 g), and silicon (indicated purity 99.9%; 0.0826 g) were evenly mixed with a stoichiometric ratio of 77.1: 8.6: 7.8: 6.5 and ground in an agate mortar for 40 min. The mixed powder was then placed in a cemented carbide grinding mold with a diameter of 5 mm and pressed into a block at about 4 MPa for three min. 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 in detail (Liu & Fan, 2018View full citation). The sample was pressurized to 6 GPa and heated at 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 was selected and mounted on a glass fiber for SXRD measurement.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 1[link]. Due to the similar electron densities of Ni/Fe and Si/Al at co-occupied sites, the site-occupancy refinement for these mixed sites is inherently inaccurate. To obtain a reasonable composition, the total proportion of Fe and Ni was maintained at approximately 20% (to preserve structural validity), while the relative occupancies of Al and Si were adjusted to approximate their ratio determined from EDX data (see the supporting information) as closely as possible. Several compositions were evaluated, and the model with the composition Al 66.42%, Si 13.58%, Fe 5.97%, Ni 14.03% was finally selected. This model maintains structural rationality, closely approximates the composition determined by EDX, and yields satisfactory reliability factors. The maximum and minimum residual electron densities in the final difference map are located 1.50 Å from (Al,Si)1 and 0.93 Å from Al4, respectively.

Table 1
Experimental details

Crystal data
Chemical formula Al13.28Fe1.19Ni2.81Si2.72
Mr 666.12
Crystal system, space group Monoclinic, C2/m
Temperature (K) 296
a, b, c (Å) 14.2407 (16), 8.6413 (10), 4.7167 (5)
β (°) 91.359 (4)
V3) 580.27 (11)
Z 2
Radiation type Mo Kα
μ (mm−1) 7.20
Crystal size (mm) 0.10 × 0.09 × 0.08
 
Data collection
Diffractometer Bruker D8 Venture Photon 100 CMOS
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.600, 0.746
No. of measured, independent and observed [I > 2σ(I)] reflections 3712, 707, 586
Rint 0.057
(sin θ/λ)max−1) 0.650
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.036, 0.059, 1.11
No. of reflections 707
No. of parameters 55
Δρmax, Δρmin (e Å−3) 0.81, −0.83
Computer programs: APEX5 and SAINT (Bruker, 2023View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXT (Sheldrick, 2015bView full citation), DIAMOND (Brandenburg & Putz, 2017View full citation) and publCIF (Westrip, 2010View full citation).

Structural data


Computing details top

Aluminium iron nickel silicide top
Crystal data top
Al13.28Fe1.19Ni2.81Si2.72F(000) = 641
Mr = 666.12Dx = 3.812 Mg m3
Monoclinic, C2/mMo Kα radiation, λ = 0.71073 Å
a = 14.2407 (16) ÅCell parameters from 2307 reflections
b = 8.6413 (10) Åθ = 2.8–27.5°
c = 4.7167 (5) ŵ = 7.20 mm1
β = 91.359 (4)°T = 296 K
V = 580.27 (11) Å3Lump, gray
Z = 20.10 × 0.09 × 0.08 mm
Data collection top
Bruker D8 Venture Photon 100 CMOS
diffractometer
586 reflections with I > 2σ(I)
phi and ω scansRint = 0.057
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
θmax = 27.5°, θmin = 2.8°
Tmin = 0.600, Tmax = 0.746h = 1818
3712 measured reflectionsk = 1011
707 independent reflectionsl = 56
Refinement top
Refinement on F255 parameters
Least-squares matrix: full0 restraints
R[F2 > 2σ(F2)] = 0.036 w = 1/[σ2(Fo2) + (0.0135P)2 + 2.4081P]
where P = (Fo2 + 2Fc2)/3
wR(F2) = 0.059(Δ/σ)max < 0.001
S = 1.11Δρmax = 0.81 e Å3
707 reflectionsΔρmin = 0.83 e Å3
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/UeqOcc. (<1)
Ni10.73802 (5)0.5000000.53636 (18)0.0060 (3)0.46 (5)
Fe10.73802 (5)0.5000000.53636 (18)0.0060 (3)0.54 (5)
Ni20.5000000.24889 (9)0.5000000.0076 (3)0.94 (5)
Fe20.5000000.24889 (9)0.5000000.0076 (3)0.06 (5)
Si10.62407 (8)0.35232 (15)0.7917 (3)0.0110 (3)0.679
Al10.62407 (8)0.35232 (15)0.7917 (3)0.0110 (3)0.321
Al20.68103 (9)0.25081 (16)0.2938 (3)0.0116 (3)
Al30.5000000.1550 (2)0.0000000.0111 (5)
Al40.78856 (14)0.5000000.0425 (4)0.0138 (5)
Al50.90936 (13)0.5000000.4897 (4)0.0127 (5)
Al60.55911 (13)0.5000000.2742 (4)0.0097 (4)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Ni10.0077 (5)0.0047 (4)0.0055 (5)0.0000.0007 (3)0.000
Fe10.0077 (5)0.0047 (4)0.0055 (5)0.0000.0007 (3)0.000
Ni20.0113 (4)0.0052 (4)0.0065 (5)0.0000.0008 (3)0.000
Fe20.0113 (4)0.0052 (4)0.0065 (5)0.0000.0008 (3)0.000
Si10.0115 (7)0.0135 (7)0.0081 (7)0.0040 (5)0.0005 (5)0.0027 (6)
Al10.0115 (7)0.0135 (7)0.0081 (7)0.0040 (5)0.0005 (5)0.0027 (6)
Al20.0168 (7)0.0071 (6)0.0107 (7)0.0012 (6)0.0046 (5)0.0007 (6)
Al30.0218 (11)0.0074 (10)0.0042 (10)0.0000.0015 (8)0.000
Al40.0198 (10)0.0172 (11)0.0044 (11)0.0000.0002 (8)0.000
Al50.0080 (9)0.0075 (10)0.0225 (12)0.0000.0004 (8)0.000
Al60.0138 (9)0.0075 (10)0.0079 (10)0.0000.0030 (8)0.000
Geometric parameters (Å, º) top
Ni1—Si1i2.4093 (13)Ni2—Al2v2.7768 (13)
Ni1—Si12.4094 (13)Fe2—Si12.3872 (13)
Ni1—Al42.455 (2)Fe2—Si1v2.3872 (13)
Ni1—Al52.455 (2)Fe2—Al3ii2.4939 (7)
Ni1—Al4ii2.477 (2)Fe2—Al32.4939 (7)
Ni1—Al2i2.5612 (14)Fe2—Al5vi2.5082 (12)
Ni1—Al22.5612 (14)Fe2—Al5iv2.5082 (12)
Ni1—Al2iii2.5737 (14)Fe2—Al62.5679 (12)
Ni1—Al2iv2.5737 (14)Fe2—Al6vii2.5680 (12)
Ni1—Al62.806 (2)Fe2—Al22.7768 (13)
Fe1—Si1i2.4093 (13)Fe2—Al2v2.7768 (13)
Fe1—Si12.4094 (13)Si1—Si1i2.552 (3)
Fe1—Al42.455 (2)Si1—Al2ii2.6354 (19)
Fe1—Al52.455 (2)Si1—Al22.6518 (19)
Fe1—Al4ii2.477 (2)Si1—Al3ii2.6601 (17)
Fe1—Al2i2.5612 (14)Si1—Al6ii2.786 (2)
Fe1—Al22.5612 (14)Si1—Al62.887 (2)
Fe1—Al2iii2.5737 (14)Si1—Al4ii2.895 (2)
Fe1—Al2iv2.5737 (14)Si1—Al6vii2.914 (2)
Fe1—Al62.806 (2)Al2—Al4viii2.7264 (18)
Ni2—Si12.3872 (13)Al2—Al5iv2.7311 (18)
Ni2—Si1v2.3872 (13)Al2—Al2iv2.731 (3)
Ni2—Al3ii2.4939 (7)Al2—Al62.7663 (18)
Ni2—Al32.4939 (7)Al3—Al3ix2.679 (4)
Ni2—Al5vi2.5082 (12)Al3—Al5viii2.990 (2)
Ni2—Al5iv2.5082 (12)Al3—Al5vi2.990 (2)
Ni2—Al62.5679 (12)Al4—Al52.690 (3)
Ni2—Al6vii2.5680 (12)Al5—Al5x2.581 (4)
Ni2—Al22.7768 (13)Al6—Al6vii2.747 (4)
Si1i—Ni1—Si163.97 (7)Al2—Si1—Al659.74 (5)
Si1i—Ni1—Al4133.68 (5)Al3ii—Si1—Al6113.15 (5)
Si1—Ni1—Al4133.68 (5)Al6ii—Si1—Al6112.47 (6)
Si1i—Ni1—Al5136.66 (5)Ni2—Si1—Al4ii168.83 (6)
Si1—Ni1—Al5136.66 (5)Ni1—Si1—Al4ii54.75 (5)
Al4—Ni1—Al566.45 (7)Si1i—Si1—Al4ii63.85 (3)
Si1i—Ni1—Al4ii72.66 (5)Al2ii—Si1—Al4ii63.31 (5)
Si1—Ni1—Al4ii72.66 (5)Al2—Si1—Al4ii104.24 (6)
Al4—Ni1—Al4ii146.06 (9)Al3ii—Si1—Al4ii132.04 (6)
Al5—Ni1—Al4ii79.61 (7)Al6ii—Si1—Al4ii75.26 (6)
Si1i—Ni1—Al2i64.40 (5)Al6—Si1—Al4ii112.98 (6)
Si1—Ni1—Al2i117.29 (5)Fe2—Si1—Al6vii56.91 (4)
Al4—Ni1—Al2i70.92 (4)Ni2—Si1—Al6vii56.91 (4)
Al5—Ni1—Al2i105.37 (4)Ni1—Si1—Al6vii109.06 (5)
Al4ii—Ni1—Al2i120.81 (4)Fe1—Si1—Al6vii109.06 (5)
Si1i—Ni1—Al2117.29 (5)Si1i—Si1—Al6vii64.03 (3)
Si1—Ni1—Al264.40 (5)Al2ii—Si1—Al6vii119.82 (6)
Al4—Ni1—Al270.92 (4)Al2—Si1—Al6vii110.02 (6)
Al5—Ni1—Al2105.37 (4)Al3ii—Si1—Al6vii73.70 (5)
Al4ii—Ni1—Al2120.81 (4)Al6ii—Si1—Al6vii64.71 (7)
Al2i—Ni1—Al2114.44 (7)Al6—Si1—Al6vii56.51 (7)
Si1i—Ni1—Al2iii72.57 (4)Al4ii—Si1—Al6vii124.34 (5)
Si1—Ni1—Al2iii126.33 (5)Ni1—Al2—Ni1iv115.73 (5)
Al4—Ni1—Al2iii98.98 (4)Ni1—Al2—Si1xi102.07 (6)
Al5—Ni1—Al2iii65.74 (4)Ni1iv—Al2—Si1xi133.31 (7)
Al4ii—Ni1—Al2iii65.31 (4)Fe1—Al2—Si155.02 (4)
Al2i—Ni1—Al2iii64.27 (5)Ni1—Al2—Si155.02 (4)
Al2—Ni1—Al2iii169.06 (3)Ni1iv—Al2—Si198.46 (6)
Si1i—Ni1—Al2iv126.33 (5)Si1xi—Al2—Si1126.27 (7)
Si1—Ni1—Al2iv72.57 (4)Ni1—Al2—Al4viii151.06 (7)
Al4—Ni1—Al2iv98.98 (4)Ni1iv—Al2—Al4viii55.63 (5)
Al5—Ni1—Al2iv65.74 (4)Si1xi—Al2—Al4viii77.96 (6)
Al4ii—Ni1—Al2iv65.31 (4)Si1—Al2—Al4viii146.54 (7)
Al2i—Ni1—Al2iv169.06 (3)Ni1—Al2—Al5iv130.35 (7)
Al2—Ni1—Al2iv64.27 (5)Ni1iv—Al2—Al5iv55.04 (5)
Al2iii—Ni1—Al2iv114.73 (7)Si1xi—Al2—Al5iv117.54 (7)
Si1i—Ni1—Al666.74 (5)Si1—Al2—Al5iv76.98 (6)
Si1—Ni1—Al666.74 (5)Al4viii—Al2—Al5iv70.69 (6)
Al4—Ni1—Al682.26 (6)Ni1—Al2—Al2iv58.09 (5)
Al5—Ni1—Al6148.71 (7)Ni1iv—Al2—Al2iv57.64 (5)
Al4ii—Ni1—Al6131.68 (7)Si1xi—Al2—Al2iv147.40 (9)
Al2i—Ni1—Al661.86 (4)Si1—Al2—Al2iv66.49 (6)
Al2—Ni1—Al661.86 (4)Al4viii—Al2—Al2iv106.78 (8)
Al2iii—Ni1—Al6122.18 (3)Al5iv—Al2—Al2iv93.85 (8)
Al2iv—Ni1—Al6122.18 (3)Fe1—Al2—Al663.42 (5)
Si1i—Fe1—Si163.97 (7)Ni1—Al2—Al663.42 (5)
Si1i—Fe1—Al4133.68 (5)Ni1iv—Al2—Al6160.41 (7)
Si1—Fe1—Al4133.68 (5)Si1xi—Al2—Al662.04 (6)
Si1i—Fe1—Al5136.66 (5)Si1—Al2—Al664.36 (6)
Si1—Fe1—Al5136.66 (5)Al4viii—Al2—Al6135.03 (8)
Al4—Fe1—Al566.45 (7)Al5iv—Al2—Al6109.22 (6)
Si1i—Fe1—Al4ii72.66 (5)Al2iv—Al2—Al6117.91 (8)
Si1—Fe1—Al4ii72.66 (5)Fe1—Al2—Fe297.79 (5)
Al4—Fe1—Al4ii146.06 (9)Si1xi—Al2—Fe292.76 (5)
Al5—Fe1—Al4ii79.61 (7)Si1—Al2—Fe252.11 (4)
Si1i—Fe1—Al2i64.40 (5)Al4viii—Al2—Fe2111.13 (6)
Si1—Fe1—Al2i117.29 (5)Al5iv—Al2—Fe254.17 (4)
Al4—Fe1—Al2i70.92 (4)Al2iv—Al2—Fe2114.12 (7)
Al5—Fe1—Al2i105.37 (4)Al6—Al2—Fe255.20 (4)
Al4ii—Fe1—Al2i120.81 (4)Ni1—Al2—Ni297.79 (5)
Si1i—Fe1—Al2117.29 (5)Ni1iv—Al2—Ni2107.38 (5)
Si1—Fe1—Al264.40 (5)Si1xi—Al2—Ni292.76 (5)
Al4—Fe1—Al270.92 (4)Si1—Al2—Ni252.11 (4)
Al5—Fe1—Al2105.37 (4)Al4viii—Al2—Ni2111.13 (6)
Al4ii—Fe1—Al2120.81 (4)Al5iv—Al2—Ni254.17 (4)
Al2i—Fe1—Al2114.44 (7)Al2iv—Al2—Ni2114.12 (7)
Si1i—Fe1—Al2iii72.57 (4)Al6—Al2—Ni255.20 (4)
Si1—Fe1—Al2iii126.33 (5)Ni2xi—Al3—Ni2142.04 (9)
Al4—Fe1—Al2iii98.98 (4)Ni2xi—Al3—Si1xi55.07 (4)
Al5—Fe1—Al2iii65.74 (4)Ni2—Al3—Si1xi98.96 (6)
Al4ii—Fe1—Al2iii65.31 (4)Ni2xi—Al3—Si1v98.96 (6)
Al2i—Fe1—Al2iii64.27 (5)Ni2—Al3—Si1v55.07 (4)
Al2—Fe1—Al2iii169.06 (3)Si1xi—Al3—Si1v100.28 (8)
Si1i—Fe1—Al2iv126.33 (5)Ni2xi—Al3—Al3ix108.98 (5)
Si1—Fe1—Al2iv72.57 (4)Ni2—Al3—Al3ix108.98 (5)
Al4—Fe1—Al2iv98.98 (4)Si1xi—Al3—Al3ix129.86 (4)
Al5—Fe1—Al2iv65.74 (4)Si1v—Al3—Al3ix129.86 (4)
Al4ii—Fe1—Al2iv65.31 (4)Ni2xi—Al3—Al5viii53.52 (3)
Al2i—Fe1—Al2iv169.06 (3)Ni2—Al3—Al5viii152.38 (4)
Al2—Fe1—Al2iv64.27 (5)Si1xi—Al3—Al5viii72.49 (4)
Al2iii—Fe1—Al2iv114.73 (7)Si1v—Al3—Al5viii151.08 (5)
Si1i—Fe1—Al666.74 (5)Al3ix—Al3—Al5viii63.38 (4)
Si1—Fe1—Al666.74 (5)Ni2xi—Al3—Al5vi152.38 (4)
Al4—Fe1—Al682.26 (6)Ni2—Al3—Al5vi53.52 (3)
Al5—Fe1—Al6148.71 (7)Si1xi—Al3—Al5vi151.08 (5)
Al4ii—Fe1—Al6131.68 (7)Si1v—Al3—Al5vi72.49 (4)
Al2i—Fe1—Al661.86 (4)Al3ix—Al3—Al5vi63.38 (4)
Al2—Fe1—Al661.86 (4)Al5viii—Al3—Al5vi126.76 (8)
Al2iii—Fe1—Al6122.18 (3)Ni1—Al4—Ni1xi146.06 (9)
Al2iv—Fe1—Al6122.18 (3)Fe1—Al4—Al556.78 (6)
Si1—Ni2—Si1v136.03 (7)Ni1—Al4—Al556.78 (6)
Si1—Ni2—Al3ii66.00 (4)Ni1xi—Al4—Al5157.15 (9)
Si1v—Ni2—Al3ii130.56 (3)Ni1—Al4—Al2viii127.33 (4)
Si1—Ni2—Al3130.56 (3)Ni1xi—Al4—Al2viii59.06 (5)
Si1v—Ni2—Al366.00 (4)Al5—Al4—Al2viii110.41 (6)
Al3ii—Ni2—Al3142.04 (9)Ni1—Al4—Al2xii127.33 (4)
Si1—Ni2—Al5vi134.89 (6)Ni1xi—Al4—Al2xii59.06 (5)
Si1v—Ni2—Al5vi86.35 (5)Al5—Al4—Al2xii110.41 (6)
Al3ii—Ni2—Al5vi74.21 (6)Al2viii—Al4—Al2xii105.30 (8)
Al3—Ni2—Al5vi73.40 (6)Ni1—Al4—Si1xi97.76 (7)
Si1—Ni2—Al5iv86.35 (5)Ni1xi—Al4—Si1xi52.59 (5)
Si1v—Ni2—Al5iv134.89 (6)Al5—Al4—Si1xi144.72 (6)
Al3ii—Ni2—Al5iv73.40 (6)Al2viii—Al4—Si1xi63.26 (5)
Al3—Ni2—Al5iv74.21 (6)Al2xii—Al4—Si1xi104.53 (7)
Al5vi—Ni2—Al5iv61.93 (8)Ni1—Al4—Si1xiii97.76 (7)
Si1—Ni2—Al671.17 (6)Ni1xi—Al4—Si1xiii52.59 (5)
Si1v—Ni2—Al671.94 (6)Al5—Al4—Si1xiii144.72 (6)
Al3ii—Ni2—Al6132.41 (6)Al2viii—Al4—Si1xiii104.53 (7)
Al3—Ni2—Al682.83 (6)Al2xii—Al4—Si1xiii63.26 (5)
Al5vi—Ni2—Al6152.89 (7)Si1xi—Al4—Si1xiii52.31 (6)
Al5iv—Ni2—Al6123.99 (5)Ni1—Al4—Al2i56.25 (4)
Si1—Ni2—Al6vii71.94 (6)Ni1xi—Al4—Al2i104.41 (6)
Si1v—Ni2—Al6vii71.17 (6)Al5—Al4—Al2i90.76 (6)
Al3ii—Ni2—Al6vii82.83 (6)Al2viii—Al4—Al2i156.54 (8)
Al3—Ni2—Al6vii132.41 (6)Al2xii—Al4—Al2i75.01 (5)
Al5vi—Ni2—Al6vii123.99 (5)Si1xi—Al4—Al2i93.68 (7)
Al5iv—Ni2—Al6vii152.89 (7)Si1xiii—Al4—Al2i53.99 (4)
Al6—Ni2—Al6vii64.66 (7)Fe1—Al4—Al256.25 (4)
Si1—Ni2—Al261.25 (4)Ni1—Al4—Al256.25 (4)
Si1v—Ni2—Al2118.46 (4)Ni1xi—Al4—Al2104.41 (6)
Al3ii—Ni2—Al2110.73 (3)Al5—Al4—Al290.76 (6)
Al3—Ni2—Al269.51 (3)Al2viii—Al4—Al275.01 (5)
Al5vi—Ni2—Al2118.68 (5)Al2xii—Al4—Al2156.54 (8)
Al5iv—Ni2—Al261.98 (5)Si1xi—Al4—Al253.99 (4)
Al6—Ni2—Al262.19 (5)Si1xiii—Al4—Al293.68 (7)
Al6vii—Ni2—Al2117.15 (5)Al2i—Al4—Al295.41 (8)
Si1—Ni2—Al2v118.46 (4)Ni1—Al5—Ni2xiv120.69 (4)
Si1v—Ni2—Al2v61.25 (4)Ni1—Al5—Ni2iv120.69 (4)
Al3ii—Ni2—Al2v69.51 (3)Ni2xiv—Al5—Ni2iv118.07 (8)
Al3—Ni2—Al2v110.73 (3)Ni1—Al5—Al5x172.71 (14)
Al5vi—Ni2—Al2v61.98 (5)Ni2xiv—Al5—Al5x59.03 (4)
Al5iv—Ni2—Al2v118.68 (5)Ni2iv—Al5—Al5x59.03 (4)
Al6—Ni2—Al2v117.15 (5)Fe1—Al5—Al456.76 (6)
Al6vii—Ni2—Al2v62.19 (5)Ni1—Al5—Al456.76 (6)
Al2—Ni2—Al2v179.31 (6)Ni2xiv—Al5—Al4109.53 (6)
Si1—Fe2—Si1v136.03 (7)Ni2iv—Al5—Al4109.53 (6)
Si1—Fe2—Al3ii66.00 (4)Al5x—Al5—Al4130.53 (13)
Si1v—Fe2—Al3ii130.56 (3)Ni1—Al5—Al2iv59.22 (4)
Si1—Fe2—Al3130.56 (3)Ni2xiv—Al5—Al2iv156.95 (9)
Si1v—Fe2—Al366.00 (4)Ni2iv—Al5—Al2iv63.84 (3)
Al3ii—Fe2—Al3142.04 (9)Al5x—Al5—Al2iv117.76 (7)
Si1—Fe2—Al5vi134.89 (6)Al4—Al5—Al2iv89.70 (6)
Si1v—Fe2—Al5vi86.35 (5)Ni1—Al5—Al2iii59.22 (4)
Al3ii—Fe2—Al5vi74.21 (6)Ni2xiv—Al5—Al2iii63.84 (3)
Al3—Fe2—Al5vi73.40 (6)Ni2iv—Al5—Al2iii156.95 (9)
Si1—Fe2—Al5iv86.35 (5)Al5x—Al5—Al2iii117.76 (7)
Si1v—Fe2—Al5iv134.89 (6)Al4—Al5—Al2iii89.70 (6)
Al3ii—Fe2—Al5iv73.40 (6)Al2iv—Al5—Al2iii105.04 (8)
Al3—Fe2—Al5iv74.21 (6)Ni1—Al5—Al3viii121.16 (7)
Al5vi—Fe2—Al5iv61.93 (8)Ni2xiv—Al5—Al3viii99.66 (7)
Si1—Fe2—Al671.17 (6)Ni2iv—Al5—Al3viii53.08 (4)
Si1v—Fe2—Al671.94 (6)Al5x—Al5—Al3viii65.12 (7)
Al3ii—Fe2—Al6132.41 (6)Al4—Al5—Al3viii70.97 (6)
Al3—Fe2—Al682.83 (6)Al2iv—Al5—Al3viii98.58 (5)
Al5vi—Fe2—Al6152.89 (7)Al2iii—Al5—Al3viii149.36 (7)
Al5iv—Fe2—Al6123.99 (5)Ni1—Al5—Al3xiv121.16 (7)
Si1—Fe2—Al6vii71.94 (6)Ni2xiv—Al5—Al3xiv53.08 (4)
Si1v—Fe2—Al6vii71.17 (6)Ni2iv—Al5—Al3xiv99.66 (7)
Al3ii—Fe2—Al6vii82.83 (6)Al5x—Al5—Al3xiv65.12 (7)
Al3—Fe2—Al6vii132.41 (6)Al4—Al5—Al3xiv70.97 (6)
Al5vi—Fe2—Al6vii123.99 (5)Al2iv—Al5—Al3xiv149.36 (7)
Al5iv—Fe2—Al6vii152.89 (7)Al2iii—Al5—Al3xiv98.58 (5)
Al6—Fe2—Al6vii64.66 (7)Al3viii—Al5—Al3xiv53.24 (8)
Si1—Fe2—Al261.25 (4)Ni2—Al6—Ni2vii115.34 (7)
Si1v—Fe2—Al2118.46 (4)Fe2—Al6—Al6vii57.67 (4)
Al3ii—Fe2—Al2110.73 (3)Ni2—Al6—Al6vii57.67 (4)
Al3—Fe2—Al269.51 (3)Ni2vii—Al6—Al6vii57.67 (4)
Al5vi—Fe2—Al2118.68 (5)Ni2—Al6—Al2i148.81 (9)
Al5iv—Fe2—Al261.98 (5)Ni2vii—Al6—Al2i62.61 (3)
Al6—Fe2—Al262.19 (5)Al6vii—Al6—Al2i111.70 (7)
Al6vii—Fe2—Al2117.15 (5)Fe2—Al6—Al262.61 (3)
Si1—Fe2—Al2v118.46 (4)Ni2—Al6—Al262.61 (3)
Si1v—Fe2—Al2v61.25 (4)Ni2vii—Al6—Al2148.81 (9)
Al3ii—Fe2—Al2v69.51 (3)Al6vii—Al6—Al2111.70 (7)
Al3—Fe2—Al2v110.73 (3)Al2i—Al6—Al2102.23 (8)
Al5vi—Fe2—Al2v61.98 (5)Ni2—Al6—Si1xi94.03 (3)
Al5iv—Fe2—Al2v118.68 (5)Ni2vii—Al6—Si1xi147.60 (6)
Al6—Fe2—Al2v117.15 (5)Al6vii—Al6—Si1xi148.77 (6)
Al6vii—Fe2—Al2v62.19 (5)Al2i—Al6—Si1xi99.42 (7)
Al2—Fe2—Al2v179.31 (6)Al2—Al6—Si1xi56.67 (5)
Ni2—Si1—Ni1114.09 (5)Ni2—Al6—Si1xiii147.60 (6)
Fe2—Si1—Fe1114.09 (5)Ni2vii—Al6—Si1xiii94.03 (3)
Ni2—Si1—Si1i111.99 (4)Al6vii—Al6—Si1xiii148.77 (6)
Ni1—Si1—Si1i58.02 (3)Al2i—Al6—Si1xiii56.67 (5)
Ni2—Si1—Al2ii126.96 (6)Al2—Al6—Si1xiii99.42 (7)
Ni1—Si1—Al2ii115.40 (6)Si1xi—Al6—Si1xiii54.52 (6)
Si1i—Si1—Al2ii109.44 (4)Ni2—Al6—Ni196.91 (5)
Fe2—Si1—Al266.64 (4)Ni2vii—Al6—Ni196.91 (5)
Ni2—Si1—Al266.64 (4)Al6vii—Al6—Ni1103.00 (10)
Ni1—Si1—Al260.58 (4)Al2i—Al6—Ni154.73 (4)
Fe1—Si1—Al260.58 (4)Al2—Al6—Ni154.73 (4)
Si1i—Si1—Al2109.32 (4)Si1xi—Al6—Ni192.54 (6)
Al2ii—Si1—Al2126.27 (7)Si1xiii—Al6—Ni192.54 (6)
Ni2—Si1—Al3ii58.93 (3)Fe2—Al6—Fe196.91 (5)
Ni1—Si1—Al3ii170.13 (6)Al6vii—Al6—Fe1103.00 (10)
Si1i—Si1—Al3ii129.86 (4)Al2i—Al6—Fe154.73 (4)
Al2ii—Si1—Al3ii69.38 (4)Al2—Al6—Fe154.73 (4)
Al2—Si1—Al3ii109.56 (6)Si1xi—Al6—Fe192.54 (6)
Ni2—Si1—Al6ii112.75 (6)Si1xiii—Al6—Fe192.54 (6)
Ni1—Si1—Al6ii113.97 (6)Fe2—Al6—Si151.49 (4)
Si1i—Si1—Al6ii62.74 (3)Ni2—Al6—Si151.49 (4)
Al2ii—Si1—Al6ii61.28 (5)Ni2vii—Al6—Si197.14 (6)
Al2—Si1—Al6ii171.58 (6)Al6vii—Al6—Si162.24 (7)
Al3ii—Si1—Al6ii75.85 (5)Al2i—Al6—Si197.32 (7)
Fe2—Si1—Al657.33 (4)Al2—Al6—Si155.90 (5)
Ni2—Si1—Al657.33 (4)Si1xi—Al6—Si1112.47 (6)
Ni1—Si1—Al663.21 (5)Si1xiii—Al6—Si1141.91 (9)
Fe1—Si1—Al663.21 (5)Ni1—Al6—Si150.05 (4)
Si1i—Si1—Al663.77 (3)Fe1—Al6—Si150.05 (4)
Al2ii—Si1—Al6172.99 (6)
Symmetry codes: (i) x, y+1, z; (ii) x, y, z+1; (iii) x+3/2, y+1/2, z+1; (iv) x+3/2, y+1/2, z+1; (v) x+1, y, z+1; (vi) x1/2, y1/2, z; (vii) x+1, y+1, z+1; (viii) x+3/2, y+1/2, z; (ix) x+1, y, z; (x) x+2, y+1, z+1; (xi) x, y, z1; (xii) x+3/2, y+1/2, z; (xiii) x, y+1, z1; (xiv) x+1/2, y+1/2, z.
 

Funding information

Funding for this research was provided by: The National Natural Science Foundation of China (grant Nos. 52173231 and 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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