Inorganic Chemistry
Communication
ACKNOWLEDGMENTS
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The authors are thankful to Dr. Anita Dutt for helpful scientific
discussion. J.A.S. and A.A. acknowledge CSIR for their JRF
fellowship. S.G. thanks IISER Bhopal for the Ph.D. fellowship.
S.K. thanks DST, Government of India (Project No. SR/FT/CS-
016/2010) and IISER Bhopal for generous financial and
infrastructural support.
REFERENCES
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Figure 6. Temperature dependence of χMT measured at 0.1 T and
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complex 1 (top) and 2 (bottom).
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increase to 5.16 cm3Kmol−1 at 2.3K before dropping sharply to
4.73 cm3Kmol−1 at 1.8 K. The gradual decline at higher
temperatures may be attributed to the presence of intramolecular
antiferromagnetic interaction in the molecules. Further decrease
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interactions and/or zero field splitting of the ground state.
Above 55 K (for 1) and 150 K (for 2), the magnetic
susceptibilities follow a Curie−Weiss behavior with C = 28.12
cm3 mol−1 K and C = 22.5 cm3 mol−1 K, respectively. The M vs H
plots for compounds 1 and 2 from 3 to 7 K (inset of Figure 6)
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inconsistent with 15 and 12 uncoupled CoII ions, and it can be
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present with high nuclearity resulting in many spin states
populated at low temperature.10 The entropy changes (ΔSm) and
hence the MCE for both compounds were performed according
to the Maxwell equation ΔSm(T)ΔH =∫ [∂M(T,H)/∂T]H dH.
In conclusion, an attempt has been made to explore the
geometry of the core of two serendipitously formed metal-
phosphonate cage compounds. The slight variation of the
coligand ratio in the synthesis resulted in a dramatic change in the
core structure. Therefore, exploring symmetry and regular
geometry of the paramagnetic core is very important in terms
of understanding the magnetic properties of the molecular
systems. Further work along this line is in progress in our group.
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ASSOCIATED CONTENT
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* Supporting Information
(9) (a) Chesman, A. S. R.; Turner, D. R.; Moubaraki, B.; Murray, K. S.;
Deacon, G. B.; Batten, S. R. Dalton Trans. 2012, 41, 3751−3757.
(b) Powell, G. W.; Lancashire, H. N.; Brechin, E. K.; Collison, D.; Heath,
S. L.; Mallah, T.; Wernsdorfer, W. Angew. Chem., Int. Ed. 2004, 43,
5772−5775. (c) Tasiopoulos, A. J.; Vinslava, A.; Wernsdorfer, W.;
Abboud, K. A.; Christou, G. Angew. Chem., Int. Ed. 2004, 43, 2117−
2121. (d) Khanra, S.; Helliwell, M.; Tuna, F.; McInnes, E. J. L.;
Winpenny, R. E. P. Dalton Trans. 2009, 6166−6174.
X-ray crystallographic data in CIF format, synthesis of both
compounds, crystallographic data, BVS calculations, and PXRD
patterns. This material is available free of charge via the Internet
AUTHOR INFORMATION
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Corresponding Author
(10) Ma, Y. S.; Song, Y.; Tang, X. Y.; Yuan, R. X. Dalton Trans. 2010,
39, 6262−6265.
Notes
The authors declare no competing financial interest.
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dx.doi.org/10.1021/ic3025183 | Inorg. Chem. XXXX, XXX, XXX−XXX