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Hydrothermal Synthesis of a Microporous Organic-Inorganic Hybrid Framework [Fe0.28V0.72OH0.8(NH4)0.2(C8H4O4)] · 0.53(C8H6O4)

Published online by Cambridge University Press:  11 February 2011

Tabatha R. Whitfield
Affiliation:
Department of Chemistry, University of Houston Houston, TX 77204, U.S.A.
Xiqu Wang
Affiliation:
Department of Chemistry, University of Houston Houston, TX 77204, U.S.A.
Allan J. Jacobson
Affiliation:
Department of Chemistry, University of Houston Houston, TX 77204, U.S.A.
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Abstract

Single crystals of a novel organic-inorganic framework [Fe0.28V0.72OH0.8(NH4)0.2(C8H4O4)] · 0.53(C8H6O4), 1, have been prepared by hydrothermal synthesis in the presence of an oxidizing agent. The structure was solved by single crystal X-ray diffraction: space group Pnma, a = 17.6956 (19) Å, b = 6.8745 (7) Å, c = 11.9303(12) Å. The three dimensional framework is constructed from Fe/V-O chains that are cross-linked by 1,4-benzene dicarboxylate (BDC) anions forming large one-dimensional channels. As synthesized, the compound contains additional dicarboxylate groups occupying disordered positions in the channels that can be removed by heating. The chemical reactivity of 1 and its magnetic properties are reported. The new phase is closely related to analogous Cr (III) and V(III) phases recently reported by Férey and co-workers.

Type
Research Article
Copyright
Copyright © Materials Research Society 2003

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References

REFERENCES

Davis, M.E., Nature, 417, 813821 (2002).Google Scholar
2. Halian, L., Eddaoudi, M., O'Keeffe, M., Yaghi, O.M., Nature, 402, 276279 (1999).Google Scholar
3. Zheng, L., Whitfield, T., Wang, X., Jacobson, A.J., Angew. Chem., 39, 45284531 (2000).Google Scholar
4. Riou-Cavallec, M., Albinet, C., Livage, C., Guillou, N., Noguès, M., Grenèche, J.M., Férey, G., Solid State Sciences, 4, 267270 (2002).Google Scholar
5. Millange, F., Serre, C., Férey, G., Chem. Commun., 8, 822823 (2002).Google Scholar
6. Barthelet, K., Marrot, J., Riou, D., Férey, G., Angew. Chem., 41, 281284 (2002).Google Scholar
7. Rosi, N. L., Eddaoudi, M., Kim, J., O'Keeffe, M., Yaghi, O.M., Angew. Chem., 41, 284287 (2002).Google Scholar
8. Merkx, M., Kopp, D. A., Sazinsky, M., Blazyk, J., Müller, J., Lippard, S., Angew. Chem., 40, 27822807 (2001).Google Scholar
9. Baes, C., Mesmer, R.E., The Hydrolysis of Cations, (Krieger Publishing Company, 1986) pp. 226237.Google Scholar
10. Vaughn, D.J., Pattrick, R.A.D. editors, The Mineralogical Society Series, Mineral Surfaces, 5, (Chapman & Hall, 1995).Google Scholar
11. Sheldrick, G.M., SHELXTL, Program for Refinement of Crystal Structures, (Siemens Analytical X-ray Instruments Inc., Madison, WI) (1994).Google Scholar
12. Vaughey, J.T., Harrison, W.T., Jacobson, A.J., Goshorn, D.P., Johnson, J.W., Inorganic Chemistry, 33, 24812487 (1994).Google Scholar