Arsenide nitrides or nitride arsenides are compounds containing anions composed of nitride (N3−) and arsenide (As3−). They can be considered as mixed anion compounds or mixed pnictide compounds. Related compounds include the arsenide phosphides, germanide arsenides, arsenide carbides, and phosphide nitrides.
Arsenide and nitride are quite different in size, so alloys are challenging to produce.[1] They can be produced by heating an arsenide compound with a nitride, under pressure so that nitrogen does not escape.
List
editname | formula | crystal
system |
space group | unit cell Å | volume | density | comment | ref |
---|---|---|---|---|---|---|---|---|
Mg3AsN | cubic | Pm3m | a =4.2148 Z=1 | 74.88 | 3.589 | orange | [2] | |
Ca3AsN | orthorhombic | Pbnm | a=6.725 b=6.7198 c=9.5335 Z=4 | 430.8 | 3.237 | red; moisture sensitive | [3] | |
Ca14As6C0.445N1.135H4.915 | P4/mbm | a = 15.749 c = 9.1062 | red; band gap 1.6 eV | [4] | ||||
Cr3AsN | tetragonal | I4/mcm | a=5.360 c=8.066 | [5][6] | ||||
gallium arsenide nitride | Ga(As,N) | |||||||
indium gallium arsenide nitride | (In,Ga)(As,N) | |||||||
aluminium gallium arsenide nitride | (Al,Ga)(As,N) | |||||||
Sr3AsN | orthorhombic | Pbnm | a=7.1856 b=10.1446 c=7.1464 Z=4 | 520.93 | 4.486 | dark grey | [2] | |
Ba3AsN | orthorhombic | Pbnm | a=7.6741 b=10.7573 c=7.5387 Z=4 | 622.33 | 5.347 | black | [2] | |
LaFe2AsN | orthorhombic | Cmcm | a =3.79932 b =11.11461 c =7.18656 | 303.474 | [7] | |||
LaCo2AsN | orthorhombic | Cmcm | a =3.75993 b =11.1674 c =7.0185 | 294699 | [7] | |||
LaNi2AsN | orthorhombic | Cmcm | a =3.71584 b =11.4147 c =6.9786 | 296.004 | [7] | |||
Th2ONAs | P3m1 | a=4.041 c=6.979 | [8] | |||||
ThCrAsN | metallic | [9] | ||||||
ThMnAsN | tetragonal | P4/nmm | a =4.0818 b =4.0818 c =8.947 | metallic | [10] | |||
ThFeAsN | tetragonal | P4/nmm | a = 4.0367 c = 8.5262 | superconductor Tc 30 K | [11] | |||
ThFe1-xCoxAsN | superconductivity lost for x>0.05 | [12] | ||||||
ThNiAsN | tetragonal | P4/nmm | a=4,0804 c=7.9888 | superconductor at 4.3K | [13] | |||
BaTh2Fe4As4(N0.7O0.3)2 | a=3.9886 c=29.853 | Tc 22K | [14] | |||||
U2N2As | P3m1 | a=3.833 c=6.737 | [8] |
References
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- ^ a b c Stoiber, Dominik; Niewa, Rainer (2019-02-15). "Perovskite Distortion Inverted: Crystal Structures of ( A 3 N)As ( A = Mg, Ca, Sr, Ba): Perovskite Distortion Inverted: Crystal Structures of ( A 3 N)As ( A = Mg, Ca, Sr, Ba)". Zeitschrift für anorganische und allgemeine Chemie. 645 (3): 329–334. doi:10.1002/zaac.201800295. S2CID 219878132.
- ^ Chern, Ming Y.; Disalvo, F.J.; Parise, J.B.; Goldstone, Joyce A. (February 1992). "The structural distortion of the anti-perovskite nitride Ca3AsN". Journal of Solid State Chemistry. 96 (2): 426–435. Bibcode:1992JSSCh..96..426C. doi:10.1016/S0022-4596(05)80277-4.
- ^ Blankenship, Trevor V.; Wang, Xiaoping; Hoffmann, Christina; Latturner, Susan E. (2014-10-06). "LiCa 3 As 2 H and Ca 14 As 6 X 7 (X = C, H, N): Two New Arsenide Hydride Phases Grown from Ca/Li Metal Flux". Inorganic Chemistry. 53 (19): 10620–10626. doi:10.1021/ic501722d. ISSN 0020-1669. PMID 25222291.
- ^ Waki, Takeshi; Takao, Kenta; Tabata, Yoshikazu; Ohta, Hiroto; Yajima, Takeshi; Hiroi, Zenji; Nakamura, Hiroyuki (15 October 2017). "Possible Itinerant-Electron Canted Antiferromagnetism in Tetragonal Antiperovskite Cr 3 AsN". Journal of the Physical Society of Japan. 86 (10): 104706. Bibcode:2017JPSJ...86j4706W. doi:10.7566/JPSJ.86.104706.
- ^ Boller, H. (1968). "Komplexcarbide und-nitride mit aufgefülltem U3Si-Typ". Monatshefte für Chemie. 99 (6): 2444–2449. doi:10.1007/BF01154362. S2CID 97266394.
- ^ a b c Jeong, Sehoon; Matsuishi, Satoru; Bang, Joonho; Hosono, Hideo (2015-04-01). "Crystal structure and physical properties of new transition metal based pnictide compounds: La TM 2AsN ( TM = Fe, Co, and Ni)". APL Materials. 3 (4): 041509. Bibcode:2015APLM....3d1509J. doi:10.1063/1.4913395. ISSN 2166-532X.
- ^ a b Benz, R.; Zachariasen, W. H. (1969-02-15). "Crystal structure of the compounds U2N2X and Th2(N,O)2 with X = P, S, As and Se". Acta Crystallographica Section B Structural Crystallography and Crystal Chemistry. 25 (2): 294–296. doi:10.1107/S0567740869002135.
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