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Antimony germanides

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Antimony germanides or antimonide germanides are compounds containing germanium and antimony along with one or more metals. Bonding is only partially ionic, and can be considered as a Zintl phase, rather than antimonide ions with germanide ions. There are often covalent bonds between the antimony, reducing its apparent valence.[1][2]

Some of the compounds have varying ratios of antimony and germanium. For example at 600 °C Gd5Sb3 and Gd5Ge3 can form a solid solution.[3]

Gold does not form a ternary compound,[4] and neither does gallium[5] or bismuth.[6]

Germanium containing antimonides have been investigated for use in thermoelectric materials.[7]

Production

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Antimonide germanide compounds can be made by heating a mixture of the powdered elements together at 600° or higher. Tantalum is used as the crucible material, as it does not react. Oxygen must be excluded to stop oxides from forming.[3]

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Related compounds include substitution of germanium with other elements from group 13 or 14: SiSb, SnSb, PbSb, AlSb, GaSb, and InSb. Replacing antimony with other pnictides can form related compounds such as phosphidosilicates, arsenidosilicates, phosphidogermanates, arsenidogermanates, phosphidostannates, arsenidostannates, phosphidoplumbates, and arsenidoplumbates.[1]

List

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formula system space group unit cell volume density comment ref
TiGeSb tetragonal P4/nmm a = 3.7022 c = 8.214 Z = 2 112.58 [8]
Fe3Ge2Sb hexagonal P6/mmm a = 8.9070 c = 7.9217 [9]
FeGe1−𝑥⁢Sb𝑥 x<0.05 hexagonal P6/mmm [10]
FeGe1−𝑥⁢Sb𝑥 0.1<x<0.2 hexagonal P63/mmm [10]
Ti0.5Fe6Ge5Sb hexagonal P6/mmm a=8.845 c=7.9785 Z=3 [11]
Cr0.8Fe5.3Ge5.2Sb0.8 hexagonal P6/mmm a=8.850 c=8.025 Z=3 [11]
Mn1.8Fe4.6Ge4.9Sb1.1 hexagonal P6/mmm a=8.910 c=7.9665 Z=3 [11]
CoGexSb1-x hexagonal P63/mmm Ge and Sb disordered [12]
Co3Ge2Sb hexagonal P6/mmm a = 8.913 c = 7.6312 Z = 6 [12]
Cu6GeSb hexagonal P63/mmc a=4.16, c=7.47 [13][14]
Ge2GaSb cubic gallium antimonide and germanium forma solid solution [15]
Y5Sb2Ge2 [16]
ZrGeSb [17]
ZrGe0.211Sb1.78 orthorhombic Pnma a = 7.304 b = 3.9513 c = 9.576 Z=4 276.35 7.763 [18]
NbGeSb tetragonal P4/nmm a=3.75 c=8.30 [19]
ZnIn18GeSb20 [7]
La5Ge3Sb hexagonal P63/mcm a=9.156 c=7.231 Z=2 525.0 [20]
La6Ge2.8Sb13.2 orthorhombic Immm a = 4.3034 b = 10.851 c = 27.073 Z=2 1272.6 Metallic; columns of trigonal prisms [21][22]
La12Ge6.6Sb21 orthorhombic Immm a=4.3165 b=15.205 c=34.443 Z=2 [23]
Ce2GeSb3 orthorhombic Cmmm Sb ZigZag chain [24][1]
Ce3GeSb [24]
Ce5Ge3Sb2 [24]
Ce6Ge5Sb12 orthorhombic Immm a=4.2972 b=10.740 c=26.791 Z=2 1236.4 Metallic; columns of trigonal prisms [21]
Ce12Ge5.2Sb26.8 C222 a=8.6075 b=21.5154 c=26.8227 4967.4 7.117 [25]
Pr6Ge5Sb12 orthorhombic Immm a=4.2574 b=10.677 c=26.626 Z=2 1213.1 Metallic; columns of trigonal prisms [21]
Pr12Ge6.48Sb21 orthorhombic Immm a=4.2578 b=114.9777 c=33.938 Z=2 2164.3 7.240 [23]
Nd6Ge3.61Sb12.4 orthorhombic Immm a = 4.2310 b = 10.6362 c = 26.526 Z=2 1197.8 Metallic; columns of trigonal prisms [21][22]
Sm6Ge5Sb12 orthorhombic Immm a=4.1932 b=10.537 c=26.350 Z=2 1164.5 Metallic; columns of trigonal prisms [21]
Gd4Ge1.97Sb1.03 cubic I43d a=9.0111 [26]
Gd5Ge0.9Sb3.1 orthorhombic Cmce a = 12.241, b = 8.025, c = 8.039 Z=4 8.539 light grey [3]
Gd2Ge3.28Sb0.65 orthorhombic Cmcm a = 4.0198, b = 30.373, c = 4.1340 Z=4 8.440 grey [3]
Gd6Ge4.3Sb11.7 orthorhombic Immm a = 4.1509 b = 10.4438 c = 26.2400 Z=2 1136.7 Metallic; columns of trigonal prisms [21][22]
Gd8Ge13.29Sb1.72 orthorhombic Cmcm a = 4.02832 b =30.4101 c = 4.14426 Z=1 507.68 7.953 [26]
Gd1.02 Sc0.98Ge0.9Sb0.1 tetragonal I4/mmm a=4.2730 c=15.658 ferromagnetic < 333K [27]
Gd1.02 Sc0.98Ge0.5Sb0.5 tetragonal I4/mmm a=4.3277 c=15.904 ferromagnetic < 170K [27]
Gd1.02 Sc0.98Ge0.2Sb0.8 tetragonal P4/nmm a=4.3192 c=8.1461 [27]
Tb6Ge5Sb12 orthorhombic Immm a=4.1305 b=10.393 c=26.139 Z=2 1122.1 Metallic; columns of trigonal prisms [21]
Dy6Ge5Sb12 orthorhombic Immm a=4.103 b=10.345 c=26.014 Z=2 1104.2 Metallic; columns of trigonal prisms [21]
Dy5Sb2Ge2 orthorhombic Cmca [16]
Ho5Sb2Ge2 orthorhombic Cmca [16]
Er5Sb2Ge2 orthorhombic Cmca [16]
Tm5Sb2Ge2 orthorhombic Cmca [16]
Yb8Ge3Sb5 tetragonal I4/mmm a=15.8965 c=6.8206 Z=4 1723.6 8.520 metallic silver; 1(Ge3)4-; negative thermal expansion under 15 K [28][29][30]
CaYb4Al2Sb5.8Ge0.2 orthorhombic [2]
CaYb4Al2Sb5.5Ge0.5 orthorhombic P1m1 a=13.9770 b=4.4203 c=11.9985 741.30 [2]
CaYb4Al2Sb5.3Ge0.7 orthorhombic [2]
HfGe0.205Sb1.795 orthorhombic Pnma a=7.312 b=3.943 c=9.488 Z=4 273.5 10.002 [18]
Hf3Cu2Ge3.58Sb1.42 tetragonal P4/nmm a = 3.8023 c = 24.575 Z=2 355.3 10.241 [31]

References

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