Chemistry:Nitridophosphate
A nitridophosphate is an inorganic compound that contains nitrogen bound to a phosphorus atom, considered as replacing oxygen in a phosphate.
Anions include NPN PN3 P3N6. Related compounds include the oxonitridophosphates[1] imidonitridophosphates,[2] nitridoborophosphates,[3] and nitridosilicatephosphates.[4] By changing the phosphorus, related materials include nitridovanadates and nitridorhenates.[5]
Nitridophosphate compounds include elements from the alkali metals, alkaline earths, first row transition metals, rare earth elements, and some other main group elements.[6]
Characteristics
Nitridophosphate compounds nearly always contain phosphorus in tetrahedral configuration. They can be characterised by the condensation index K which is the ratio of numbers of phosphorus tetrahedral centres to nitrogen vertices. As more nitrogen atoms are shared between phosphorus, condensation increases. The maximum is for P3N5 which no longer has any capacity for cations. For K of 1/2 three dimensional frameworks are produced. For 2/7 or 3/7 layered arrangements of tetrahedra are produced. For 1/3 chains or ring structures are prominent. 1/4 is for uncondensed PN4 compounds. Tow PN4 tetrahedra can also share an edge: P2N6, as the P-N bond is not very polarised, so there is less electrostatic repulsion.[6] Uncondensed compounds are sensitive to air and water but highly condensed compounds are water or acid stable.[6]
Nitridophosphate compounds are usually insulators and are transparent to light.[6]
Formation
Heating P3N5 with a metal nitride at gigapascal pressure and a temperatures of over 1000 °C forms nitridophosphates. P3N5 decomposes over 850 °C at ambient pressure. However there are a few nitridophosphates that do no require such high temperatures to form.[7][8]
Heating ammonia under pressure with red phosphorus, and metals, metal nitrides or metal azides is a method called ammonothermal synthesis.[9]
Use
Nitridophosphates are under investigation as luminescent materials, that can covert blue light into red.[8]
List
| formula | system | space group | unit cell | volume | density | comment | reference |
|---|---|---|---|---|---|---|---|
| HPN2 | tetragonal | I42d | a = 4.6182 c = 7.0204 Z = 4 | [10][11] | |||
| HPN3 | [12] | ||||||
| β-HP4N7 | monoclinic | C2/c | a = 12.873 b = 4.6587 c = 8.3222 β = 102.351° Z = 4 | 487.55 | 3.037 | colourless | [13] |
| γ-HP4N7 | monoclinic | C2/c | a=6.82983 b=7.24537 c=8.96504 β = 111.5557° Z = 4 | 412.604 | 3.572 | high pressure form > 12 GPa; P in trigonal bipyramid | [14] |
| LiPN2 | [12] | ||||||
| Li7PN4 | cubic | P43n | a=9.3648 Z=8 | tetrahedra | [12][15] | ||
| β-Li10P4N10 | trigonal | a=8.71929 c=21.4656 Z=6 | 1413.3 | 2.35015 | colourless; tetrahedron of 4 tetrahedra | [12] | |
| α-Li10P4N10 | cubic | >80 °C | [7] | ||||
| Li5P2N5 | monoclinic | C2/c | a=14.770 b=17.850 c=4.860 β =93.11° | layered, high pressure | [16] | ||
| Li4PN3 | orthorhombic | Pccn | a=9.6597 b=11.8392 c=4.8674 | chains | [17] | ||
| Li12P3N9 | monoclinic | Cc | a=12.094 b=7.649 c=9.711 β=90.53° | ring of 3 tetrahedra | [12][17] | ||
| Li18P6N16 | monoclinic | P1 | a=5.4263 b=7.5354 c=9.8584 α=108.481° β=99.288° γ=104.996° Z=1 | 355.8 | 2.496 | tricyclic | [18] |
| Li13P4N10Cl3 | cubic | Fm3m | a=13.Z=8 Z=8 | 2704.27 | 2.2624 | colourless; | [7] |
| Li13P4N10Br3 | cubic | Fm3m | a=14.1096 Z=8 | 2809.0 | 2.8088 | colourless; | [7] |
| LiP4N7 | orthorhombic | P212121 | a=4.5846 b=8.009 c=13.252 Z=4 | 485.8 | 3.130 | air stable; grey | [19] |
| Li1.34P6N9.34(NH)1.66 | monoclinic | P1 | a=4.691 b=7.024 c=12.736, α=87.73° β=80.28° γ=70.55° Z=2 | 390.0 | 2.988 | air stable; grey | [19] |
| BeP2N4 | cubic | Fd3 | a=7.1948 Z=8 | 372.44 | bulk modulus 325 GPa | [20] | |
| BP3N6 | monoclinic | P21/c | a=5.027 b=4.5306 c=17.332 β=106.387° Z=4 | 378.7 | 3.293 | [21] | |
| Li47B3P14N42 | trigonal | P3c1 | a=19.3036 c=18.0200 | [3] | |||
| NaPN2 | [22] | ||||||
| NaP4N7 | [19] | ||||||
| Na3P6N11 | [19] | ||||||
| Mg2PN3 | orthorhombic | Cmc21 | a=9.723 b=5.6562 c=4.7083 | band gap 5.0 eV | [12][23] | ||
| MgP8N14 | orthorhombic | a=8.364 b=5.0214 c=23.196 | 974.3 | 3.192 | [24] | ||
| AlP6N11 | monoclinic | Cm | a=4.935 b=8.161 c=9.040 β=98.63° | grey; layered; thermal expansion 16.0 ppm/K | [25] | ||
| Ca2PN3 | orthorhombic | Cmca | a = 5.1914 b =10.3160 c = 11.289 Z = 8 | beige; chains | [12] | ||
| CaP8N14 | [24] | ||||||
| Sc5P12N23O3 | tetragonal | I41/acd | a=12.3598 c=24.0151 Z=8 | 3668.6 | 3.500 | grey | [26] |
| TiP4N8 | orthorhombic | Pmn21 | a=7.6065 b=4.6332 c=7.8601 Z=2 | 227.01 | 3.403 | [27] | |
| TiP4N8 | orthorhombic | Pmn21 | a=22.9196 b=4.5880 c=8.0970 Z=6 | 851.44 | 3.322 | [27] | |
| Ti5P12N24O2 | tetragonal | I41/acd | a=a=12.1214 c=23.8458 Z=8 | 3503.6 | 3.713 | black; Ti3+ & Ti4+ | [26] |
| MnP2N4 | hexagonal | P6322 | a = 16.5543 c = 7.5058 | 1781.3 | [26][28] | ||
| FeP8N14 | orthorhombic | Cmca | a=8.2693 = 5.10147 c=23.0776 | air stable | [29] | ||
| CoP8N14 | orthorhombic | Cmca | a=8.25183 b=5.10337 c=22.9675 | air stable | [29] | ||
| NiP8N14 | orthorhombic | Cmca | a=8.23105 b=5.08252 c=22.8516 | air stable | [29] | ||
| CuPN2 | tetragonal | I42d | a = 4.5029 c = 7.6157 | 154.42 | band gap 1.67 eV | [22] | |
| Zn2PN3 | orthorhombic | Cmc21 | a = 9.37847 b = 5.47696 c = 4.92396 Z = 4 | colourless | [30][31] | ||
| Zn8P12N24O2 | tetragonal | I43m | a=8.24239 c=8.24239 | [32] | |||
| Zn8P12N24S2 | [32] | ||||||
| Zn8P12N24Se2 | [32] | ||||||
| Zn8P12N24Te2 | [32] | ||||||
| Zn7P12N24Cl2 | sodalite structure | [12] | |||||
| GeP2N4 | orthorhombic | Pna21 | a=9.547 b=7.542 c=4.6941 Z=4 | dark grey | [33] | ||
| Sr3P3N7 | monoclinic | P2/c | a=6.882 b=7.416 c=7.036 β=104.96° Z=2 | 346.9 | 4.345 | white; decompose in moist air; band gap 4.4 eV | [34] |
| Sr2SiP2N6 | orthorhombic | C2221 | a = 6.0849 b = 8.8203 c = 10.2500 | [35] | |||
| SrP8N14 | [10] | ||||||
| SrP3N5NH | monoclinic | P21/c | a=5.01774 b=8.16912 c=12.70193 β=101.7848° Z=4 | [2] | |||
| SrH4P6N12 | [10] | ||||||
| Sr5Si2P6N16 | orthorhombic | Pbam | a = 9.9136 b = 17.5676 c = 8.3968 | [35] | |||
| SrAl5P4N10O2F3 | tetragonal | I4m2 | a=11.1685 c=7.8485 Z=2 | 978.99 | 3.905 | [36] | |
| Sr3P5N10Cl | orthorhombic | Pnma | a=12.240 b=12.953 c=13.427 Z=8 | [37] | |||
| Sr3P5N10Br | orthorhombic | Pnma | a=12.297 b=12.990 c=13.458 Z=8 | [37] | |||
| AgPN2 | [38] | ||||||
| CdP2N4 | hexagonal | P6322 | a = 16.7197 c = 7.6428 | 1850.3 | [26][28] | ||
| InP6N11 | grey; layered | [25] | |||||
| BaP2N4 | [24] | ||||||
| Ba3P5N10Cl | orthorhombic | Pnma | [37] | ||||
| Ba3P5N10Br | orthorhombic | Pnma | [37] | ||||
| BaSr2P6N12 | cubic | Pa3 | a=10.0639 Z=4 | 1019.3 | 4.343 | [24] | |
| La2P3N7 | monoclinic | C2/c | [34][39] | ||||
| Ce2P3N7 | monoclinic | C2/c | [34][39] | ||||
| Ce4Li3P18N35 | hexagonal | P63/m | a=13.9318 c=8.1355 | [40] | |||
| Pr2P3N7 | monoclinic | C2/c | a = 7.8006 b = 10.2221 c = 7.7798 β = 111.299° Z = 4 | [34][39] | |||
| Nd2P3N7 | P421m | [34][39] | |||||
| LiNdP4N8 | orthorhombic | Pnma | a=8.7305 b=7.8783 c=9.0881 | [41] | |||
| Sm2P3N7 | P421m | [34][39] | |||||
| Eu2P3N7 | P421m | [34][39] | |||||
| Ho2P3N7 | P421m | a = 7.3589 c = 4.9986 Z = 2 | [34][39] | ||||
| Ho3[PN4]O | tetragonal | I4/mcm | a = 6.36112 c = 10.5571 Z = 4 | [42] | |||
| Yb2P3N7 | P421m | [34][39] | |||||
| Hf9−xP24N52−4xO4x (x≈1.84) | I41/acd | a=12.4443 c=23.7674 Z=4 | 3680.6 | [43] |
References
- ↑ Pritzl, Reinhard M.; Prinz, Nina; Strobel, Philipp; Schmidt, Peter J.; Johrendt, Dirk; Schnick, Wolfgang (20 July 2023). "From Framework to Layers Driven by Pressure – The Monophyllo-Oxonitridophosphate β-MgSrP 3 N 5 O 2 and Comparison to its α-Polymorph". Chemistry – A European Journal 29 (41). doi:10.1002/chem.202301218. PMID 37205841.
- ↑ 2.0 2.1 Vogel, Sebastian; Schnick, Wolfgang (2018-09-20). "SrP 3 N 5 NH: A Framework-Type Imidonitridophosphate Featuring Structure-Directing Hydrogen Bonds" (in en). Chemistry – A European Journal 24 (53): 14275–14281. doi:10.1002/chem.201803210. ISSN 0947-6539. PMID 30004596. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201803210.
- ↑ 3.0 3.1 Bertschler, Eva-Maria; Bräuniger, Thomas; Dietrich, Christian; Janek, Jürgen; Schnick, Wolfgang (18 April 2017). "Li47B3P14N42 —A Lithium Nitridoborophosphate with [P3N9]12−, [P4N10]10−, and the Unprecedented [B3P3N13]15− Ion". Angewandte Chemie International Edition 56 (17): 4806–4809. doi:10.1002/anie.201701084. PMID 28370871.
- ↑ Eisenburger, Lucien; Oeckler, Oliver; Schnick, Wolfgang (March 2021). "High-Pressure High-Temperature Synthesis of Mixed Nitridosilicatephosphates and Luminescence of AE SiP 3 N 7 :Eu 2+ (AE =Sr, Ba)" (in en). Chemistry – A European Journal 27 (13): 4461–4465. doi:10.1002/chem.202005495. ISSN 0947-6539. PMID 33464635.
- ↑ Chaushli, Azad; Jacobs, Herbert; Weisser, Ulrike; Strähle, Joachim (September 2000). "Li5ReN4, ein Lithium–Nitridorhenat(VII) mit anti-Flußspat-Überstruktur". Zeitschrift für anorganische und allgemeine Chemie 626 (9): 1909–1914. doi:10.1002/1521-3749(200009)626:9<1909::AID-ZAAC1909>3.0.CO;2-T. https://onlinelibrary.wiley.com/doi/10.1002/1521-3749(200009)626:93.0.CO;2-T.
- ↑ 6.0 6.1 6.2 6.3 Kloß, Simon D.; Schnick, Wolfgang (11 June 2019). "Nitridophosphates: A Success Story of Nitride Synthesis". Angewandte Chemie International Edition 58 (24): 7933–7944. doi:10.1002/anie.201812791. Bibcode: 2019ACIE...58.7933K.
- ↑ 7.0 7.1 7.2 7.3 Bertschler, Eva-Maria; Dietrich, Christian; Leichtweiß, Thomas; Janek, Jürgen; Schnick, Wolfgang (2018-01-02). "Li + Ion Conductors with Adamantane-Type Nitridophosphate Anions β-Li10P4N10 and Li13P4N10X3 with X =Cl, Br" (in en). Chemistry – A European Journal 24 (1): 196–205. doi:10.1002/chem.201704305. ISSN 0947-6539. PMID 29027753. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201704305.
- ↑ 8.0 8.1 Wendl, Sebastian; Mardazad, Sara; Strobel, Philipp; Schmidt, Peter J.; Schnick, Wolfgang (5 October 2020). "HIP to be Square: Simplifying Nitridophosphate Synthesis in a Hot Isostatic Press". Angewandte Chemie 132 (41): 18397–18400. doi:10.1002/ange.202008570. PMID 32644230. Bibcode: 2020AngCh.13218397W.
- ↑ Mallmann, Mathias; Wendl, Sebastian; Schnick, Wolfgang (11 February 2020). "Crystalline Nitridophosphates by Ammonothermal Synthesis". Chemistry – A European Journal 26 (9): 2067–2072. doi:10.1002/chem.201905227. PMID 31909508. Bibcode: 2020ChEuJ..26.2067M.
- ↑ 10.0 10.1 10.2 Wendl, Sebastian; Schnick, Wolfgang (2018-10-22). "SrH4P6N12 and SrP8N14: Insights into the Condensation Mechanism of Nitridophosphates under High Pressure" (in en). Chemistry – A European Journal 24 (59): 15889–15896. doi:10.1002/chem.201803125. ISSN 0947-6539. PMID 30136742. Bibcode: 2018ChEuJ..2415889W. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201803125.
- ↑ Schnick, W.; Lücke, J. (April 1992). "Darstellung, Kristallstruktur und IR-spektroskopische Untersuchung von Phosphor(V)-nitrid-imid, HPN 2" (in en). Zeitschrift für anorganische und allgemeine Chemie 610 (4): 121–126. doi:10.1002/zaac.19926100120. ISSN 0044-2313. https://onlinelibrary.wiley.com/doi/10.1002/zaac.19926100120.
- ↑ 12.0 12.1 12.2 12.3 12.4 12.5 12.6 12.7 Schnick, Wolfgang; Schultz-Coulon, Verena (February 1993). "Ca2PN3: A New Phosphorus(V) Nitride with One-Dimensional Infinite Chains of Corner-Sharing PN4 Tetrahedra" (in en). Angewandte Chemie International Edition in English 32 (2): 280–281. doi:10.1002/anie.199302801. ISSN 0570-0833. https://onlinelibrary.wiley.com/doi/10.1002/anie.199302801.
- ↑ Baumann, Dominik; Schnick, Wolfgang (2014-08-04). "High-Pressure Polymorph of Phosphorus Nitride Imide HP4N7 Representing a New Framework Topology" (in en). Inorganic Chemistry 53 (15): 7977–7982. doi:10.1021/ic500767f. ISSN 0020-1669. https://pubs.acs.org/doi/10.1021/ic500767f.
- ↑ Baumann, Dominik; Schnick, Wolfgang (2014-12-22). "Pentacoordinate Phosphorus in a High-Pressure Polymorph of Phosphorus Nitride Imide P4N6(NH)" (in en). Angewandte Chemie International Edition 53 (52): 14490–14493. doi:10.1002/anie.201406086. ISSN 1433-7851. PMID 25124527. Bibcode: 2014ACIE...5314490B. https://onlinelibrary.wiley.com/doi/10.1002/anie.201406086.
- ↑ Schnick, Wolfgang; Luecke, Jan (July 1990). "Synthesis and crystal structure of lithium phosphorus nitride Li7PN4: The first compound containing isolated PN4-tetrahedra" (in en). Journal of Solid State Chemistry 87 (1): 101–106. doi:10.1016/0022-4596(90)90070-E. https://linkinghub.elsevier.com/retrieve/pii/002245969090070E.
- ↑ Bertschler, Eva-Maria; Niklaus, Robin; Schnick, Wolfgang (2018-01-12). "Reversible Polymerization of Adamantane-type [P4N1010− Anions to Honeycomb-type [P2N5]5− Layers under High-Pressure"] (in en). Chemistry – A European Journal 24 (3): 736–742. doi:10.1002/chem.201704975. ISSN 0947-6539. PMID 29136304. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201704975.
- ↑ 17.0 17.1 Bertschler, Eva-Maria; Niklaus, Robin; Schnick, Wolfgang (2017-07-18). "Li12P3N9 with Non-Condensed [P3N912− -Rings and its High-Pressure Polymorph Li 4 PN 3 with Infinite Chains of PN 4 -Tetrahedra"] (in en). Chemistry – A European Journal 23 (40): 9592–9599. doi:10.1002/chem.201700979. ISSN 0947-6539. PMID 28543928. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201700979.
- ↑ Bertschler, Eva-Maria; Dietrich, Christian; Janek, Jürgen; Schnick, Wolfgang (2017-02-10). "Li 18 P 6 N 16 —A Lithium Nitridophosphate with Unprecedented Tricyclic [P6N1618− Ions"] (in en). Chemistry – A European Journal 23 (9): 2185–2191. doi:10.1002/chem.201605316. ISSN 0947-6539. PMID 27977044. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201605316.
- ↑ 19.0 19.1 19.2 19.3 Schneider, Stefanie; Klenk, Sebastian; Kloss, Simon D.; Schnick, Wolfgang (2024-01-11). "Please Mind the Gap: Highly Condensed P–N Networks in LiP4N7 and Li3−xP6N11−x(NH)x" (in en). Chemistry – A European Journal 30 (3). doi:10.1002/chem.202303251. ISSN 0947-6539. PMID 37874966.
- ↑ Vogel, Sebastian; Bykov, Maxim; Bykova, Elena; Wendl, Sebastian; Kloß, Simon D.; Pakhomova, Anna; Dubrovinskaia, Natalia; Dubrovinsky, Leonid et al. (2020-02-10). "Nitride Spinel: An Ultraincompressible High-Pressure Form of BeP2N4" (in en). Angewandte Chemie 132 (7): 2752–2756. doi:10.1002/ange.201910998. ISSN 0044-8249. Bibcode: 2020AngCh.132.2752V.
- ↑ Vogel, Sebastian; Buda, Amalina T.; Schnick, Wolfgang (October 2018). "United in Nitride: The Highly Condensed Boron Phosphorus Nitride BP3N6" (in en). Angewandte Chemie International Edition 57 (40): 13202–13205. doi:10.1002/anie.201808111. ISSN 1433-7851. PMID 30088854. Bibcode: 2018ACIE...5713202V. https://onlinelibrary.wiley.com/doi/10.1002/anie.201808111.
- ↑ 22.0 22.1 Pucher, Florian J.; Hummel, Franziska; Schnick, Wolfgang (April 2015). "CuPN2: Synthesis, Crystal Structure, and Electronic Properties" (in en). European Journal of Inorganic Chemistry 2015 (11): 1886–1891. doi:10.1002/ejic.201500009. ISSN 1434-1948. Bibcode: 2015EJIC.2015.1886P. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/ejic.201500009.
- ↑ Mallmann, Mathias; Maak, Christian; Niklaus, Robin; Schnick, Wolfgang (2018-09-18). "Ammonothermal Synthesis, Optical Properties, and DFT Calculations of Mg2PN3 and Zn2PN3" (in en). Chemistry – A European Journal 24 (52): 13963–13970. doi:10.1002/chem.201803293. ISSN 0947-6539. PMID 30044518. Bibcode: 2018ChEuJ..2413963M. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.201803293.
- ↑ 24.0 24.1 24.2 24.3 Wendl, Sebastian; Seidl, Lisa; Schüler, Patrick; Schnick, Wolfgang (2020-12-21). "Post-Synthetic Modification: Systematic Study on a Simple Access to Nitridophosphates" (in en). Angewandte Chemie International Edition 59 (52): 23579–23582. doi:10.1002/anie.202011835. ISSN 1433-7851. PMID 32941701. Bibcode: 2020ACIE...5923579W.
- ↑ 25.0 25.1 Ambach, Sebastian J.; Pointner, Monika; Falkai, Sophie; Paulmann, Carsten; Oeckler, Oliver; Schnick, Wolfgang (2023-06-12). "Combining MN6 Octahedra and PN5 Trigonal Bipyramids in the Mica-like Nitridophosphates MP6N11 (M =Al, In)" (in en). Angewandte Chemie 135 (24). doi:10.1002/ange.202303580. ISSN 0044-8249. Bibcode: 2023AngCh.135E3580A.
- ↑ 26.0 26.1 26.2 26.3 Eisenburger, Lucien; Weippert, Valentin; Oeckler, Oliver; Schnick, Wolfgang (2021-10-13). "High-Pressure Synthesis of Sc5P12N23O3 and Ti5P12N24O2 by Activation of the Binary Nitrides ScN and TiN with NH4F" (in en). Chemistry – A European Journal 27 (57): 14184–14188. doi:10.1002/chem.202101858. ISSN 0947-6539. PMID 34407247. Bibcode: 2021ChEuJ..2714184E.
- ↑ 27.0 27.1 Eisenburger, Lucien; Weippert, Valentin; Paulmann, Carsten; Johrendt, Dirk; Oeckler, Oliver; Schnick, Wolfgang (2022-05-02). "Discovery of Two Polymorphs of TiP4N8 Synthesized from Binary Nitrides" (in en). Angewandte Chemie International Edition 61 (19). doi:10.1002/anie.202202014. ISSN 1433-7851. PMID 35179291. Bibcode: 2022ACIE...61E2014E.
- ↑ 28.0 28.1 Pucher, Florian J.; Karau, Friedrich W.; Schmedt auf der Günne, Jörn; Schnick, Wolfgang (April 2016). "CdP2N4 and MnP2N4 – Ternary Transition-Metal Nitridophosphates" (in en). European Journal of Inorganic Chemistry 2016 (10): 1497–1502. doi:10.1002/ejic.201600042. ISSN 1434-1948. Bibcode: 2016EJIC.2016.1497P. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/ejic.201600042.
- ↑ 29.0 29.1 29.2 Kloß, Simon D.; Janka, Oliver; Block, Theresa; Pöttgen, Rainer; Glaum, Robert; Schnick, Wolfgang (2019-03-26). "Open-Shell 3d Transition Metal Nitridophosphates MIIP8N14 (MII =Fe, Co, Ni) by High-Pressure Metathesis" (in en). Angewandte Chemie International Edition 58 (14): 4685–4689. doi:10.1002/anie.201809146. ISSN 1433-7851. PMID 30320436. https://onlinelibrary.wiley.com/doi/10.1002/anie.201809146.
- ↑ Ambach, Sebastian J.; Pritzl, Reinhard M.; Bhat, Shrikant; Farla, Robert; Schnick, Wolfgang (2024-02-07). "Nitride Synthesis under High-Pressure, High-Temperature Conditions: Unprecedented In Situ Insight into the Reaction" (in en). Inorganic Chemistry 63 (7): 3535–3543. doi:10.1021/acs.inorgchem.3c04433. ISSN 0020-1669. PMID 38324917. https://pubs.acs.org/doi/10.1021/acs.inorgchem.3c04433.
- ↑ Sedlmaier, Stefan J.; Eberspächer, Moritz; Schnick, Wolfgang (March 2011). "High-Pressure Synthesis, Crystal Structure, and Characterization of Zn 2 PN 3 – A New catena -Polynitridophosphate" (in en). Zeitschrift für anorganische und allgemeine Chemie 637 (3–4): 362–367. doi:10.1002/zaac.201000403. ISSN 0044-2313. https://onlinelibrary.wiley.com/doi/10.1002/zaac.201000403.
- ↑ 32.0 32.1 32.2 32.3 Karau, Friedrich; Oeckler, Oliver; Schäfers, Franz; Niewa, Rainer; Schnick, Wolfgang (August 2007). "Zn8[P12N24O2 – ein Nitridophosphat-oxid mit Sodalith-Struktur"] (in en). Zeitschrift für anorganische und allgemeine Chemie 633 (9): 1333–1338. doi:10.1002/zaac.200600322. ISSN 0044-2313. https://onlinelibrary.wiley.com/doi/10.1002/zaac.200600322.
- ↑ Ambach, Sebastian J.; Somers, Cody; de Boer, Tristan; Eisenburger, Lucien; Moewes, Alexander; Schnick, Wolfgang (2023-01-16). "Structural Influence of Lone Pairs in GeP2N4, a Germanium(II) Nitridophosphate" (in en). Angewandte Chemie International Edition 62 (3). doi:10.1002/anie.202215393. ISSN 1433-7851. PMID 36350660. Bibcode: 2023ACIE...62E5393A.
- ↑ 34.0 34.1 34.2 34.3 34.4 34.5 34.6 34.7 34.8 Mallmann, Mathias; Wendl, Sebastian; Strobel, Philipp; Schmidt, Peter J.; Schnick, Wolfgang (2020-05-15). "Sr 3 P 3 N 7: Complementary Approach by Ammonothermal and High-Pressure Syntheses" (in en). Chemistry – A European Journal 26 (28): 6257–6263. doi:10.1002/chem.202000297. ISSN 0947-6539. PMID 32030819. Bibcode: 2020ChEuJ..26.6257M.
- ↑ 35.0 35.1 Dialer, Marwin; Pointner, Monika M.; Wandelt, Sophia L.; Strobel, Philipp; Schmidt, Peter J.; Bayarjargal, Lkhamsuren; Winkler, Björn; Schnick, Wolfgang (2023-12-03). "Order and Disorder in Mixed (Si, P)–N Networks Sr2SiP2N6 :Eu2+ and Sr5Si2P6N16 :Eu2+" (in en). Advanced Optical Materials 12 (13). doi:10.1002/adom.202302668. ISSN 2195-1071.
- ↑ Pointner, Monika M.; Oeckler, Oliver; Schnick, Wolfgang (2023-09-26). "Tetra-Face-Capped Octahedra in a Tetrahedra Network – Structure Determination and Scanning Transmission Electron Microscopy of SrAl5P4N10O2F3" (in en). Chemistry – A European Journal 29 (54). doi:10.1002/chem.202301960. ISSN 0947-6539. PMID 37410334.
- ↑ 37.0 37.1 37.2 37.3 Wendl, Sebastian; Zipkat, Mirjam; Strobel, Philipp; Schmidt, Peter J.; Schnick, Wolfgang (2021-02-23). "Synthesis of Nitride Zeolites in a Hot Isostatic Press" (in en). Angewandte Chemie International Edition 60 (9): 4470–4473. doi:10.1002/anie.202012722. ISSN 1433-7851. PMID 33201554. Bibcode: 2021ACIE...60.4470W.
- ↑ "Электронное строение, химическая связь и некоторые физико-химические свойства кристаллов A1PN2(A1=H, Li, Na, Ag) - Пермина, Виктория Сергеевна - 02.00.04 - Физическая химия". https://freereferats.ru/product_info.php?products_id=4209.
- ↑ 39.0 39.1 39.2 39.3 39.4 39.5 39.6 39.7 Kloß, Simon D.; Weidmann, Niels; Niklaus, Robin; Schnick, Wolfgang (2016-09-19). "High-Pressure Synthesis of Melilite-type Rare-Earth Nitridophosphates RE2P3N7 and a Ba2Cu[Si2O7-type Polymorph"] (in en). Inorganic Chemistry 55 (18): 9400–9409. doi:10.1021/acs.inorgchem.6b01611. ISSN 0020-1669. PMID 27579899. https://pubs.acs.org/doi/10.1021/acs.inorgchem.6b01611.
- ↑ Kloß, Simon D.; Neudert, Lukas; Döblinger, Markus; Nentwig, Markus; Oeckler, Oliver; Schnick, Wolfgang (2017-09-13). "Puzzling Intergrowth in Cerium Nitridophosphate Unraveled by Joint Venture of Aberration-Corrected Scanning Transmission Electron Microscopy and Synchrotron Diffraction" (in en). Journal of the American Chemical Society 139 (36): 12724–12735. doi:10.1021/jacs.7b07075. ISSN 0002-7863. PMID 28823161. Bibcode: 2017JAChS.13912724K. https://pubs.acs.org/doi/10.1021/jacs.7b07075.
- ↑ Kloß, Simon David; Schnick, Wolfgang (2015-09-14). "Rare-Earth-Metal Nitridophosphates through High-Pressure Metathesis" (in en). Angewandte Chemie International Edition 54 (38): 11250–11253. doi:10.1002/anie.201504844. ISSN 1433-7851. PMID 26352033. https://onlinelibrary.wiley.com/doi/10.1002/anie.201504844.
- ↑ Kloß, Simon D.; Weidmann, Niels; Schnick, Wolfgang (2017-04-03). "Antiperovskite Nitridophosphate Oxide Ho3[PN4O by High-Pressure Metathesis"] (in en). European Journal of Inorganic Chemistry 2017 (13): 1930–1937. doi:10.1002/ejic.201601425. ISSN 1434-1948. Bibcode: 2017EJIC.2017.1930K. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/ejic.201601425.
- ↑ Kloß, Simon D.; Wandelt, Sophia; Weis, Andreas; Schnick, Wolfgang (2018-03-12). "Accessing Tetravalent Transition-Metal Nitridophosphates through High-Pressure Metathesis" (in en). Angewandte Chemie International Edition 57 (12): 3192–3195. doi:10.1002/anie.201712006. ISSN 1433-7851. PMID 29377432. https://onlinelibrary.wiley.com/doi/10.1002/anie.201712006.
| NH3 | He(N2)11 | ||||||||||||||||
| Li3N | Be3N2 | BN | β-C3N4 g-C3N4 |
N2 | NxOy | NF3 | Ne | ||||||||||
| Na3N | Mg3N2 | AlN | Si3N4 | PN P3N5 |
SxNy SN S4N4 |
NCl3 | Ar | ||||||||||
| K3N | Ca3N2 | ScN | TiN | VN | CrN Cr2N |
MnxNy | FexNy | CoN | Ni3N | CuN | Zn3N2 | GaN | Ge3N4 | As | Se | NBr3 | Kr |
| Rb3N | Sr3N2 | YN | ZrN | NbN | β-Mo2N | Tc | Ru | Rh | PdN | Ag3N | CdN | InN | Sn | Sb | Te | NI3 | Xe |
| Cs3N | Ba3N2 | Hf3N4 | TaN | WN | Re | Os | Ir | Pt | Au | Hg3N2 | TlN | Pb | BiN | Po | At | Rn | |
| Fr3N | Ra3N | Rf | Db | Sg | Bh | Hs | Mt | Ds | Rg | Cn | Nh | Fl | Mc | Lv | Ts | Og | |
| ↓ | |||||||||||||||||
| La | CeN | Pr | Nd | Pm | Sm | Eu | GdN | Tb | Dy | Ho | Er | Tm | Yb | Lu | |||
| Ac | Th | Pa | UN | Np | Pu | Am | Cm | Bk | Cf | Es | Fm | Md | No | Lr | |||
