Startseite Naturwissenschaften Crystal structure of tetrasodium-bis(μ 2-oxido)-hexafluoro-didioxo-molybdenum(V), Na2(Mo2O4F6)
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Crystal structure of tetrasodium-bis(μ 2-oxido)-hexafluoro-didioxo-molybdenum(V), Na2(Mo2O4F6)

  • Chen Wu-Hua ORCID logo EMAIL logo , Zhang Zhu-Sen , Qiu Ze-Hai , Wen Li-Ting und Xu Hong
Veröffentlicht/Copyright: 23. September 2022

Abstract

O4F6Na2Mo2, triclinic, P 1 (no. 2), a = 6.6154(6) Å, b = 7.8572(8) Å, c = 9.3588(11) Å, α = 95.257(9)°, β = 90.753(9)°, γ = 113.426(10)°, V = 443.83(9) Å3, Z = 2, R gt (F) = 0.0431, wR ref (F 2) = 0.1125, T = 293(2) K.

CCDC no.: 2206943

A part of the title crystal structure is shown in the figure. Table 1 contains crystallographic data and Table 2 contains the list of the atoms including atomic coordinates and displacement parameters.

Table 1:

Data collection and handling.

Crystal: Block, brown
Size: 0.15 × 0.11 × 0.08 mm
Wavelength: Mo Kα radiation (0.71073 Å)
μ: 3.11 mm−1
Diffractometer, scan mode: Xcalibur, φ and ω-scans
θ max, completeness: 29°, >99%
N(hkl)measured, N(hkl)unique, R int: 3614, 2040, 0.032
Criterion for I obs, N(hkl)gt: I obs > 2 σ(I obs), 1803
N(param)refined: 145
Programs: CrysAlisPRO [1], SHELX [2, 3], OLEX2 [4]
Table 2:

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2).

x y z U iso*/U eq
F1 0.4985 (6) 0.0810 (5) 0.1538 (4) 0.0144 (9)
F2 0.6600 (7) 0.1721 (5) 0.4309 (5) 0.0160 (9)
F3 0.9145 (6) 0.2795 (5) 0.2147 (5) 0.0136 (8)
F4 1.1123 (6) 0.6928 (5) 0.1650 (5) 0.0140 (9)
F5 1.0212 (7) 0.9151 (5) 0.3497 (5) 0.0155 (9)
F6 0.8514 (7) 0.8167 (6) 0.0493 (5) 0.0176 (9)
Mo1 0.63801 (9) 0.33498 (7) 0.27620 (6) 0.00906 (17)
Mo2 0.80335 (9) 0.67789 (8) 0.22992 (7) 0.01020 (17)
Na1 0.2171 (5) −0.0728 (4) −0.0094 (3) 0.0161 (6)
Na2 0.6359 (4) 0.1092 (4) 0.6625 (3) 0.0143 (6)
Na3 1.0266 (4) 0.2022 (4) 0.4184 (3) 0.0139 (6)
Na4 1.2353 (5) 0.4610 (4) 0.1283 (3) 0.0188 (6)
O1 0.3855 (8) 0.3194 (7) 0.3244 (6) 0.0166 (11)
O2 0.8442 (8) 0.5530 (6) 0.3895 (5) 0.0139 (10)
O3 0.6730 (8) 0.4520 (6) 0.0993 (5) 0.0129 (10)
O4 0.5832 (8) 0.7283 (7) 0.2720 (6) 0.0192 (11)

Source of materials

A mixture containing (NH4)2MoO4⋅4H2O (4.830 g), NaF (1.350 g), citrin (C6H8O7) (1.250 g), and deionized water (H2O) (10.0 mL), with pH value 6.5, was prepared by mixing these components and sealed in a 25 mL Teflon-lined stainless steel autoclave (65% of the total volume of the autoclave). The resulting slurry was heated to 453 K in an oven and maintained at the temperature for three days. The brown purity-phase crystals of the title compound (about 25% yield based on Mo) were obtained.

Experimental details

All atoms were placed at calculated positions with the SHELX program.

Comment

Over the past decades, the study on fluorides has attracted more and more attention for its important applications in modern science and technology [5], [6], [7], [8]. In general, inhomogeneous fluorides have widely different physicochemical properties, e.g. reactiveness, solubility and stability, and so on [9], [10], [11]. Meanwhile, fluorides were used in many important fields, such as organic synthesis, civilian chemical, biochemistry, nuclear chemistry, biomedicine, energy storage, battery technologies [12], [13], [14], [15].

Herein, we report a new title fluoride, Na2(Mo2O4F6). Single-crystal X-ray diffraction structure study reveals that the title compound, which has open 3D-network structure consists of Na+ and a dinuclear molybdenum oxyfluoride. The asymmetric unit of the compound contains a dinuclear anion, [Mo2O4F6]4−, and four Na+ cations. The [Mo2O4F6]4− anion is made up of two similar units, [MoO3F3] (see the figure). The [MoO3F3] buliding unit presents a deformed octahedral configuration with the Mo atom in the center. The six-coordinated Mo atoms show the bond distances (Mo–O t ) of 1.696(5) Å for terminal oxygen atoms and the bond distances (Mo–O b ) of 1.921(5)–1.940(5) Å for two-bridging oxygen atoms. The Mo–F bond distances are vary in the range of 2.055(4)–2.117(4) Å. O/F–Mo–O/F bond angles are in the range of 76.19(17)–165.4(2)°. The 3D title compound is formed by the Na+ cations connecting [Mo2O2F6]4− anions by means of Na–O and Na–F bonds. Bond valence calculations (BVS) [16] on Mo1 and Mo2 sites afford values of 5.105 and 5.108 respectively.


Corresponding author: Chen Wu-Hua, College of Chemistry and Material Science; Fujian Provincial Colleges and University Engineering Research Center of Solid Waste Resource Utilization (Longyan University), Longyan University, Longyan 364012, Fujian Province, P. R. China, E-mail:

Funding source: Natural Science Foundation of Fujian Province

Award Identifier / Grant number: 2020J01367

Funding source: Qimai Science and Technology Innovation Foundations of Xinluo County and Wuping County

Award Identifier / Grant number: 2022XLQM011, 2022WOQM04

  1. Author contributions: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: The work was supported by the Natural Science Foundation of Fujian Province (No. 2020J01367) and the Qimai Science and Technology Innovation Foundation of Xinluo County and Wuping County (No. 2022XLQM011, 2022WOQM04).

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

1. Oxford Diffraction Ltd CrysAlisPRO; Oxford Diffraction Ltd: Abingdon, Oxfordshire, England, 2015.Suche in Google Scholar

2. Sheldrick, G. M. SHELXT – integrated space-group and crystal-structure determination. Acta Crystallogr. 2015, A71, 3–8; https://doi.org/10.1107/s2053273314026370.Suche in Google Scholar PubMed PubMed Central

3. Sheldrick, G. M. Crystal structure refinement with SHELXL. Acta Crystallogr. 2015, C71, 3–8; https://doi.org/10.1107/s2053229614024218.Suche in Google Scholar

4. Dolomanov, O. V., Bourhis, L. J., Gildea, R. J., Howard, J. A., Puschmann, H.. J. Appl. Crystallogr. 2009, 42, 339–341; https://doi.org/10.1107/s0021889808042726.Suche in Google Scholar

5. Tausta, S. L., Berbasova, T., Peverelli, M., Strobel, S. A. The fluoride transporter FLUORIDE EXPORTER (FEX) is the major mechanism of tolerance to fluoride toxicity in plants1. Plant Physiol. 2021, 186, 1143–1158; https://doi.org/10.1093/plphys/kiab131.Suche in Google Scholar PubMed

6. Naumova, E. A., Staiger, M., Kouji, O., Modric, J., Pierchalla, T., Rybka, M., Hill, R. G., Arnild, W. H. Randomized investigation of the bioavailability of fluoride in saliva after administration of sodium fluoride, amine fluoride and fluoride containing bioactive glass dentifrices. BMC Oral Health 2019, 19, 119; https://doi.org/10.1186/s12903-019-0805-6.Suche in Google Scholar PubMed PubMed Central

7. Hou, X., Zhang, Z., Shen, K., Cheng, S., He, Q., Shi, Y., Yu, D. Y. W., Su, C.-Y., Li, L.-J., Chen, F. An aqueous rechargeable fluoride ion battery with dual fluoride electrodes. J. Electrochem. Soc. 2019, 166, A2419–A2424; https://doi.org/10.1149/2.0301912jes.Suche in Google Scholar

8. Liu, X.-F., Song, J.-Y., Zhao, B.-B., Huang, S.-J. Crystal structure of acrinidinium tetrafluorohydrogenphthalate, C21H11F4NO4. Z. Kristallogr. – New Cryst. Struct. 2022, 237, 685–687; https://doi.org/10.1515/ncrs-2022-0081.Suche in Google Scholar

9. Davidovich, R., Fedorov, P., Popov, A. Structural chemistry of fluoride and mixed-ligand fluoride complexes of gallium(III). Rev. Inorg. Chem. 2017, 37, 147–184; https://doi.org/10.1515/revic-2017-0010.Suche in Google Scholar

10. Sampaio, C., Delberm, A. C. B., Paiva, M. F., Zen, L., Danelon, M., Cunha, R. F., Pessan, J. P. Amount of dentifrice and fluoride concentration influence salivary fluoride concentrations and fluoride intake by toddlers. Caries Res. 2020, 54, 234–241; https://doi.org/10.1159/000503780.Suche in Google Scholar PubMed

11. Song, X., He, Y., Wang, B., Peng, S., Pan, X., Wei, M., Liu, Q., Qin, H.-L., Tang, H. Synthesis of aryl sulfonyl fluorides from aryl sulfonyl chlorides usin sulfuryl fluoride (SO2F2) as fluoride provider. Tetrahedron 2022, 108, 132657; https://doi.org/10.1016/j.tet.2022.132657.Suche in Google Scholar

12. Sheng, C., Li, Z., Pu, M., Lei, M. Theoretical study on the mechanism of t benzaldehyde deoxyfluorination by sulfuryl fluoride and tetramethylammonium fluoride. J. Phys. Org. Chem. 2022, 35, e4389; https://doi.org/10.1002/poc.4389.Suche in Google Scholar

13. Nowroozi, M. A., Wissel, K., Rohrer, J., Munnangi, A. R., Clemens, O. LaSrMnO4: reversible electrochemical intercalation of fluoride ions in the context of fluoride ion batteries. Chem. Mater. 2017, 29, 3441–3453; https://doi.org/10.1021/acs.chemmater.6b05075.Suche in Google Scholar

14. Shen, P., Fernando, J. R., Yuan, Y., Walker, G. D., Reynolds, C., Reynolds, E. C. Bioavailable fluoride in calcium-containing detifrices. Sci. Rep. 2011, 11, 146.10.1038/s41598-020-80503-xSuche in Google Scholar PubMed PubMed Central

15. Mulryan, D., White, A. J. P., Crimmin, M. R. Organocatalyzed fluoride metathesis. Org. Lett. 2020, 22, 9351–9355; https://doi.org/10.1021/acs.orglett.0c03593.Suche in Google Scholar PubMed

16. Brese, N. E., O′Keeffe, M. Bond–valence parameters for solids. Acta Crystallogr. Sect. B Struct. Sci. 1991, 47, 192–197; https://doi.org/10.1107/s0108768190011041.Suche in Google Scholar

Received: 2022-08-12
Accepted: 2022-09-13
Published Online: 2022-09-23
Published in Print: 2022-12-16

© 2022 the author(s), published by De Gruyter, Berlin/Boston

This work is licensed under the Creative Commons Attribution 4.0 International License.

Artikel in diesem Heft

  1. Frontmatter
  2. New Crystal Structures
  3. The crystal structure of 1,5-bis(4-chlorophenyl)-3-(3-methylphenyl)pentane- 1,5-dione, C48H40Cl4O4
  4. Crystal structure of (bis(1,10-phenanthroline-κ 2 N,N′))-(3,5-dinitrosalicylato-κ 2 O,O′)nickel(II), C31H18N6NiO7
  5. Crystal structure of {N,N′-bis(4-fluoro-salicylaldehyde)-3,6-dioxa-1,8-diaminooctane-κ4 O,N,N′,O′}zinc(II), C20H20F2N2O4Zn
  6. [5-Bromo-2-(2-(dimethylamino)ethyliminomethyl)phenolato-κ3 N,N′,O]-isothiocyanato-nickel(II), C12H14BrN3NiOS
  7. Crystal structure of 9-bromo-4-(6-methoxypyridin-2-yl)-5,6-dihydrobenzo[h]quinazolin- 2-amine, C18H15BrN4O
  8. The crystal structure of imidazolium nitrate, C3H5O3N3
  9. Crystal structure of diiodido-bis(6,6′-dimethoxy-2,2′-(ethane-1,2-diylbis(nitrilomethanylylidene)) diphenolato)tricadmium(II), C36H36Cd3I2N4O8
  10. Crystal structure of [diaqua-bis(2-((1H-tetrazol-1-yl)methyl)-5-carboxy-1H-imidazole-4-carboxylato-κ2 N,O) manganese(II)] dihydrate, C14H18MnN12O12
  11. Crystal structure of Diaqua[5,5′-dicarboxy-2,2′-(propane-1,3-diyl)bis(1H-imidazole-4-carboxylato-k4 O,O′,N,N′)]iron(II), C13H14FeN4O10
  12. Crystal structure of poly[dimethanol-κ1O-(µ2-(E)-2-((2-oxidobenzylidene)amino)acetato)-(µ3-(E)-2-((2-oxidobenzylidene)amino)acetato)dicadmium(II)], C20H22Cd2N2O8
  13. Crystal structure of N 2,N 6-bis(2-(((E)-quinolin-8-ylmethylene)amino)phenyl)pyridine-2,6-dicarboxamide, C39H27N7O2
  14. An I 6 2 anion in the crystal structure of theophyllinium triiodide monohydrate, C7H11I3N4O3
  15. The crystal structure of poly[6,6′-oxybis(4-(pyridin-1-ium-1-yl)-1,3,5,2,4,6-trioxatriborinan-2-olate)], [B6O9](C5H5N)2
  16. The crystal structure of (carbonato κ2 O,O′)(2-oxopyridin-1(2H)-olato-κN)tris(trimethylphosphine)rhodium(III) water solvate, C15H33NO5P3Rh
  17. The crystal structure of dibromido-bis((RS)-2-(4-chlorophenyl)-2-(1,2,4-triazol-1-ylmethyl)hexanenitrile-κ1 N)zinc(II), C30H34Br2Cl2N8Zn
  18. Synthesis and crystal structure of 3-(((7-hydroxy-3-(4-hydroxy-3,5-dinitrophenyl)-4-oxo-4H-chromen-8-yl)methyl)(nitroso)amino)propanoic acid, C19H14N4O11
  19. The crystal structure of 3-((4-chloro-N-(2-methoxyethyl)benzamido)methyl)phenyl methanesulfonate, C18H20ClNO5S
  20. Crystal structure of di([1,1′:3′,1″-terphenyl]-2′-yl)tellane, C36H26Te
  21. The crystal structure of diaqua-bis(pyrazolo[1,5-a]-pyrimidine-3-carboxylato-κ2 N,O)zinc(II), C14H12N6O6Zn
  22. Crystal structure of N′,N‴-((1E,2E)-1,2-diphenylethane-1,2-diylidene)bis(4-methylbenzohydrazide) – water – methanol (1/1/1), C31H32N4O4
  23. Crystal structure of 3-((2,4-dichlorobenzyl)thio)-5-methyl-7-(trifluoromethyl)-[1,2,4]triazolo [4,3-c]pyrimidine, C14H9Cl2F3N4S
  24. Crystal structure of 3,5,6,7-tetramethoxy-3′,4′-methylenedioxy-flavone, C20H18O8
  25. Crystal structure of catena-poly[(5,5′-dimethyl-2,2′-bipyridine-κ 2 N,N′)-(μ 3-hydrogen-1,1′,1″-(1,3,5-triazine-2,4,6-triyl)tris(piperidine-4-carboxylato)- κ 5 O:O,O′:O″,O‴)-cadmium(II)], C33H40CdN8O6
  26. The crystal structure of 3,5-bis(propan-2-yl)-1H-pyrazol-4-amine, C9H17N3
  27. Crystal structure of [(1,4,7,10-tetraoxacyclododecane-κ 4 O,O′,O″, O‴)-tris(nitrato-κ 2 O,O′)gadolinium(III)], C8H16N3O13Gd
  28. The crystal structure of 2,2′-((pyridine-2,6-diylbis(methylene))bis(sulfanediyl))-bis(4,5-dihydro-1H-imidazol-3-ium) bromide, C13H19Br2N5S2
  29. Crystal structure of E-2-chloro-N′-(1-(5-chloro-2-hydroxyphenyl)propylidene)benzohydrazide, C16H14Cl2N2O2
  30. Crystal structure of 3-(adamantan-1-yl)-4-methyl-5-{[(4-nitrophenyl)methyl]sulfanyl}-4H-1,2,4-triazole, C20H24N4O2S
  31. The crystal structure of dimethanol-κ1O-(5,10,15,20-tetrakis(4-nitrophenyl)porphyrin-21,23-diido-κ4 O,O′,O″,O′″)manganese(III) trans-dicyanido-κ1C-bis(acetylacetonato-κ2 O,O′)ruthenium(III), C58H46N10O14RuMn
  32. The crystal structure of nitroxyl-κ N-{hydridotris(3-trifluoromethyl-5-methylpyrazolyl-1-yl-κN 3)borato}nickel(II), C15H13BF9N7NiO
  33. The crystal structure of [(2,2′-bipyridine-κ2 N,N)-bis(6-phenylpyridine-2-carboxylato- κ2 N,O)nickel(II)] monohydrate, C34H26N4O5Ni
  34. The crystal structure of 5-(2-fluoro-3-methoxyphenyl)-1-(2-fluoro-6-(trifluoromethyl)benzyl)-6-methylpyrimidine-2,4(1H,3H)-dione, C20H15F5N2O3
  35. The crystal structure of ethyl 2,3,5-trifluoro-4-(4-oxo-3,4-dihydropyridin-1(2H)-yl)benzoate, C14H12F3NO3
  36. [2,2′-{Ethane-1,2-diylbis[(azanylylidene)methanylylidene]}bis(3-bromo-2-hydroxyphenyl)]iron(III) nitrate, C20H12Br2CuN2O2
  37. The crystal structure of 1-(2-iodophenyl)-4-phenyl-1H-1,2,3-triazole, C14H10IN3
  38. Synthesis and crystal structure of 2-(2-oxo-2-(thiophen-2-yl)ethyl)-4H-chromen-4-one, C15H10O3S
  39. {6,6′-((1E,1′E)-((2,2-dimethylpropane-1,3-diyl)bis(azaneylylidene))bis(methaneylylidene))bis(2-bromo-4-chlorophenolate)-κ4N,N′,O,O′}copper(II), C19H16Br2Cl2CuN2O2
  40. The crystal structure of N′-[bis(2-hydroxyphenyl)methylidene]pyridine-4-carbohydrazide, C19H15N3O3
  41. Crystal structure of 2-chloro-6-formylphenolato-κ2O,O′-(6,6′-(((2,2-dimethylpropane-1,3-diyl)bis(azaneylylidene))bis(methaneylylidene))bis(2-chlorophenolato)κ4 N,N,O,O′)cobalt(III), C26H22Cl3CoN2O4
  42. The crystal structure of tetrakis(6-phenylpyridine-2-carboxylate-κ 2 N,O)-bis(μ2-6-phenylpyridine-2-carboxylate-κ 2 O:O′)-bis(μ2-6-phenylpyridine-2-carboxylate-κ 3N,O:O)tetralead(II) C48H32N4O8Pb2
  43. The crystal structure of 3,7-dihydroxy-9-methoxy-4a-methyl-4aH-benzo[c] chromene-2,6-dione —dichloromethane (1/1), C16H14Cl2O6
  44. The crystal structure of (Z)-6-(((5-chloro-2-hydroxyphenyl)amino)methylene)- 4-nitrocyclohexa, C13H9ClN2O4
  45. Crystal structure of dichlorido-tetra((E)-(RS)-1-(2,4-dichlorophenyl)-4,4-dimethyl-2-(1,2,4-triazol-1-yl)pent-1-en-3-ol-κ1 N)zinc(II), C60H68O4N12Cl10Zn
  46. The crystal structure of 4-(2-bromoethoxy)-2-hydroxybenzaldehyde, C9H9BrO3
  47. The crystal structure of 5-azido-1-methyl-4-nitroimidazole, C4H4O2N6
  48. Crystal structure of dibromido-tetra((E)-(RS)-1-(2,4-dichlorophenyl)-4,4-dimethyl-2-(1,2,4-triazol-1-yl)pent-1-en-3-ol-κ 1 N)zinc(II), C60H68O4N12Br2Cl8Zn
  49. Crystal structure of tetrasodium-bis(μ 2-oxido)-hexafluoro-didioxo-molybdenum(V), Na2(Mo2O4F6)
  50. Crystal structure of (E)-N′-(2-chloro-6-hydroxybenzylidene)-4- hydroxybenzohydrazide-water (1/1), C14H13Cl1N2O4
  51. Crystal structure of (E)-N-(4-morpholinophenyl)-1-(quinolin-2-yl)methanimine, C20H19N3O
  52. The crystal structure of catena-poly[(1,10-phenanthroline-κ2 N,N′)-(μ3-2-hydroxybenzene-1,3-dicarboxylato-κ5 O,O′:O″,O‴:O‴)cadmium(II)], C20H12CdN2O5
  53. The crystal structure of 2,6-di-tert-butyl-4-(4-(methylthio)benzylidene)cyclohexa-2,5-dien-1-one, C22H28OS
  54. La3.65Mg30Sb1.07 as a disordered derivative of Th2Ni17-type structure
  55. Crystal structure of (E)-N-(4-morpholinophenyl)-1-(quinoxalin-2-yl)methanimine, C19H18N4O
  56. The crystal structure of 2,2′-(1,2-phenylenebis(methylene))bis(1,3-dimethylisothiouronium) bromide, C14H24Br2N4S2
  57. Crystal structure of tetraaqua-bis[4-(1H-1,2,4-triazol-1-yl)benzoato-κ1 N]zinc(II), C18H20ZnN6O8
  58. Crystal structure of bis(tricarbonyl)-{(S)-(tert-butoxycarbonyl)(1-methoxy-1-oxo-3-sulfido-k2 S:S′-propan-2-yl)amido-k2N:N′}diiron(I) (Fe—Fe), C15H15Fe2NO10S
  59. Crystal structure of (E)-3-((4-chlorophenyl)thio)-4-hydroxypent-3-en-2-one, C11H11ClO2S
  60. The crystal structure of (E)-3′,6′-bis(diethylamino)-2-((5-(diethylamino)-2-hydroxybenzylidene)amino)spiro[isoindoline-1,9′-xanthen]-3-one, C39H45N5O3
  61. The crystal structure of 2-(4-methoxynaphthalen-1-yl)-4H-chromen-4-one, C20H14O3
  62. The crystal structure of trans-dichlorido-(ethylenediamine-κ 2 N,N′)-bis(triphenylphosphine-κ 1 P)ruthenium(II), C38H38Cl2N2P2Ru
  63. The double polymeric chain of catena-poly[(μ2-6-bromopyridine-3-carboxylato-κ2 O,O′) (6-bromopyridine-3-carboxylato-κ2 O,O′) (μ2-1,2-bis(4-pyridyl)ethylene-κ2 N:N′)cobalt(II)], C24H16CoBr2N4O4
  64. The crystal structure of tert-butyl 2-(4-(12-bromo [2.2]paracyclophanyl)carbamoyl)pyrrolidine-1-carboxylate, C26H31BrN2O3
  65. The crystal structure of (Z)-2-(2,3-dimethoxybenzylidene)naphtho[1,2-b]furan-3(2H)-one, C21H16O4
  66. Crystal structure of 2-hydroxy-1-tosylindolin-3-yl- 2-naphthoate, C26H21N1S1O5
  67. The crystal structure of 1-methyl-N-(1-methyl-1H-imidazole-2-carbonyl)-1H-imidazole-2-carboxamide, C10H11N5O2
  68. The crystal structure of (E)-2-((5-bromo-2-hydroxybenzylidene)amino)-3′,6′-bis(ethylamino)-2′, 7′-dimethylspiro[isoindoline-1,9′-xanthen]-3-one, C33H31BrN4O3
  69. The crystal structure of dimethanol-5,15-diphenylporphyrin-21,23-diido-κ4 N,Nʹ,Nʺ,Nʹʺ-manganese(III) trans-dicyanido-bis(acetylacetonato-κ2O,Oʹ)ruthenium(III), C46H42N6O6RuMn
  70. Crystal structure of 1,4,8,11-tetraazacyclotetradecane-1,8-diium bis(3,5-dicarboxybenzoate), C28H36N4O12
  71. Bifurcated halogen bonds in the crystal structure of 2,2′-bi(1,8-naphthyridine)—1,4-diiodotetrafluorobenzene (1/1), C22H10F4I2N4
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