Nitridosilicate

From Wikipedia, the free encyclopedia

The nitridosilicates are chemical compounds that have anions with nitrogen bound to silicon. Counter cations that balance the electric charge are mostly electropositive metals from the alkali metals, alkaline earths or rare earth elements. Silicon and nitrogen have similar electronegativities, so the bond between them is covalent. Nitrogen atoms are arranged around a silicon atom in a tetrahedral arrangement.[1]

Related compounds include pnictogenidosilicates :phosphidosilicates, arsenidosilicates and ; pnictogenidogernamates: . By replacing silicon, there are also nitridogermanates, , and .

Use[]

Nitridosilicates are used as host substances for europium in LED phosphors. Examples include CASN () (CaAlSiN3), SCASN (SrCaAlSiN3) and SCSN (SrCaSiN3). These fluoresce red.[2]

Production[]

Nitridosilicates can be made in a solid state reaction by heating silicon nitride with metallic nitrides in a nitrogen atmosphere at over 1300°C. If the mixtures are exposed to oxygen or air, then oxides or are produced instead. Instead of metal nitrides, ammine complexes, amides or imides can be used instead. In place of the highly stable silicon nitride, can be used.[3] Carbothermal reduction involves using a metal oxide or carbonate heated with carbon in a nitrogen atmosphere.[4]

Properties[]

The ratio of silicon to nitrogen varies from 1:4 to 7:10 (0.25 to 0.7) with increased condensation, and fewer sites for metals with high silicon content. At a ratio of 3:4 (0.75) there is no longer capacity for metal, as that is silicon nitride.[5] The more condensed substances, with lower nitrogen content, have greater number of silicon atoms surrounding the nitrogen. This coordination number can vary from one to four, with the most common being three. The silicon atom always is coordinated by four nitrogen atoms. In the silicates, silicon is surrounded by four oxygen atoms, but each oxygen is only connected to one or two silicon atoms, and only very rarely three. So nitridosilicates can form more diverse structures than the silicates.[6]

Nitridosilicates with higher proportion of silicon (more condensed) are more resistant to attack by water and oxygen, and so can be exposed to the atmosphere without decomposition.[6] These condensed nitridosilicates are mechanically strong, and resistant to heat, acids and alkalis.[1]

SiN4 tetrahedra can be connected to each other via vertices or edges. This differs from SiO4 which only connects via vertices.[1]

Use[]

Nitridosilicates have been used to make abrasives, turbine blades, cutting tools and phosphors.[4]

Nitridosilicates[]

name formula formula

weight

crystal

system

space

group

unit cell volume density comments ref
LiSi2N3 [5]
Li2SiN2 [7]
Li5SiN3 [7]
Li8SiN4 [8]
Li18Si3N10 [7]
Li21Si3N11 I4 a=9.4584 c=9.5194 antifluorite structure [7]
BeSiN2 [9]
MgSiN2 [5]
NaSi2N3 [9]
Ca2Si5N8 332.64 monoclinic Cc a = 14.3280 b = 5.61165 c = 9.69406 β = 112.1484 Z=4 721.92 3.06 Eu orange fluorescence [5][10][4]
CaSiN2 [5]
Ca4SiN4 [5]
Ca5Si2N6 [5]
Ca16Si17N34 [5]
Li4Ca3Si2N6 288.24 monoclinic C2/m a=5.787 b=9.705 c=5.977 β=90.45 335.7 2.852 [5][11]
Li2CaSi2N4 [5]
Li2Ca2Mg2Si2N6 [5]
Li2Ca3MgSi2N6 [5]
CaMg3SiN4 [9]
CaAlSiN3 orthorhombic Cmc21 Eu yellow fluorescence [12]
CaAlSi4N7 orthorhombic Pna21 a = 11.6819, b = 21.0193, c = 4.9177 Å [13]
Ca5Al2Si2N8 [9]
CaScSi4N7 [5]
Manganese silicide dinitride MnSiN2 orthorhombic Pna21 a = 5.271, b = 6.521, and c = 5.0706 V=174.26 intense red [8]
Fe2Si5N8 364.23 monoclinic Cc a= 14.0408 b = 5.32635 c = 9.5913 β = 110.728 Z=4 decompose 1370K; brown [10]
ZnSiN2 [9]
SrSiN2 [5]
Sr2Si5N8 orthorhombic Pmn21 a = 5.71006 b = 6.81914 c = 9.33599 Z=2 363.52 3.908 Eu red fluorescence [5][4][14]
SrSi6N8 [5]
SrSi7N10 [13]
Li2SrSi2N4 cubic a=10.69 Z=12 1220 [5][15]
Li4Sr3Si2N6 monoclinic C2/m a = 6.127, b = 9.687, c = 6.220, β = 90.24° Z=2 369.1 3.876 [11]
SrMg3SiN4 [9]
SrAlSiN3 Cmc21 [12]
SrAlSi4N7 Pna21 [13]
SrScSi4N7 [5]
CaYSi4N7 [5]
SrYSi4N7 [5]
BaSiN2 [5]
Ba5Si2N6 [9]
Ba2Si5N8 orthorhombic Pmn21 Eu red fluorescence [5][4]
BaSi6N8 Imm2 a = 7.9316, b = 9.3437, c = 4.8357, Z = 2 358.38 [5][16]
BaSi7N10 monoclinic a = 6.8729, b = 6.7129, c = 9.6328, β = 106.269, Z = 2 most condensed [5][17]
Carbodiimide Ba6Si6N10O2(CN2) P6 a = 16.255, c = 5.469, Z = 3 yellow, grown in liquid sodium [18]
Ba5Si11Al7N25 Pnnm a = 9.5923, b = 21.3991, c = 5.8889 Å Z = 2 with Eu yellow emission [19]
BaSi4Al3N9 P21/C a = 5.8465, b = 26.726, c = 5.8386 Å, β = 118.897° and Z = 4 with Eu blue emission [19]
BaScSi4N7 [5]
BaYSi4N7 [5]
LaSi3N5 [5]
La3Si6N11 [5]
La5Si3N9 [9]
La7Si6N15 [9]
calcium lanthanum nitridosilicate CaLaSiN3 Ca can be substituted by Yb or Eu [20]
CaLaSi4N7 [5]
CeSi3N5 [9]
Ce3Si6N11 [9]
Ce3Si5N9 [9]
Ce7Si6N15 triclinic [9]
Ce7Si6N15 trigonal [9]
Pr3Si6N11 [9]
Pr5Si3N9 [9]
Pr7Si6N15 [9]
Ba2Nd7Si11N23 dark blue [21]
Sm3Si6M11 [9]
Ca3Sm3[Si9N17] cubic P4_3m a=7.3950; Z=1 404.4 [22]
Eu2SiN3 Cmca a = 5.42, b = 10.610, c = 11.629, Z = 8 [9][23]
dieuropium penta siliconoctanitride Eu2Si5N8 orthorhombic Pnm21 a=5.7094 b=6.8207 c=9.3291 Z=2 363.29 5.087 red [9][24]
Ca3Yb3[Si9N17] cubic P4_3m a=730.20 Z=1 389.3 [22]
BaYbSi4N7 includes NSi4 clusters [9][25]
europium ytterbium tetrasiliconheptanitride EuYbSi4N7 hexagonal P63mc a=5.9822 c=9.7455 302.03 5.887 brown [9][24]
SrYbSi4N7 [9]
EuYbSi4N7 [9]
CaLuSi4N7 [5]
SrLuSi4N7 [5]
BaLuSi4N7 [5]
Pb2Si5N8 666.90 orthorhombic Pmn21 a = 5.774 b = 6.837 c = 9.350 269.11 6.001 Pb-Pb dumbells [14]

References[]

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