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Consequences on the electronic structure and hyperfine of iridium–iron alloys when transformed into substituted iron iridium nitrides

Published online by Cambridge University Press:  01 May 2014

A.V. dos Santos*
Affiliation:
Departamento de Ciências Exatas e da Terra, Universidade Regional Integrada do Alto Uruguai e das Missões, Santo Ângelo, Rio Grande do Sul, Brazil
*
a)Address all correspondence to this author. e-mail: vandao@urisan.tche.br
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Abstract

For years, substituted iron nitrides have been studied by various types of approaches: physical, chemical, and materials engineering, both experimental and theoretical. More recently, substituted iron nitrides have been studied by theoretical models for calculation of electronic structure, presenting the advantage of being economically viable. The properties of these compounds have potential application not only as a recording material but also in other areas: as resistance to corrosion and wear. The changes occurred in the alloys when transformed into nitrides still require further studies. Thus, the electronic and magnetic structure of IrFe3 and Ir3Fe alloys and the changes caused in their ground state properties when the nitrogen atoms were included in their stoichiometry, turning them into substituted iron nitrides type Ir3FeN and IrFe3N, will be investigated in this study. The electronic structure of these compounds was modeled using the linearized augmented plane waves (LAPW), an augmented plane wave (APW – method of Slater) modification. The following methodology was used in this study: the cohesive energy for steady state was calculated and then the ground state properties, such as charge transfer, magnetic moment, hyperfine properties, and the density of states, were obtained. The ground state properties are also assessed from the pressure variation experienced by these compounds, that way, the induced changes in the alloys caused by introducing the nitrogen atom are obtained. This study may assist in obtaining new and better nitrides.

Type
Articles
Copyright
Copyright © Materials Research Society 2014 

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References

REFERENCES

Rahnamaye Aliabad, H.A., Fathabadi, M., and Ahmad, I.: Int. J. Quantum Chem. 113, 865872 (2013).Google Scholar
Reshak, A.H. and Jamal, M.: J. Alloys Compd. 555, 362366 (2013).Google Scholar
Reshak, A.H., Lakshminarayana, G., Ebothe, J., Fedorchuk, A.O., Fedyna, M.F., Kamarudin, H., Mandracci, P., and Auluck, S.: J. Alloys Compd. 556, 259265 (2013).Google Scholar
Paduani, C.: Phys. Status Solidi B 241, 29232927 (2004). DOI: 10.1002/pssb.200402065.Google Scholar
Andriamandroso, D., Matar, S., Demazeau, G., and Fournès, L.: IEEE Trans. Magn. 29, 2 (1993).Google Scholar
von Appen, J. and Dronskowiski, R.: Angew. Chem. Int. Ed. 44, 12051210 (2005).Google Scholar
Skriver, H.L.: The LMTO Method: Orbitals and Electronic Structure (Springer, New York, 1984).Google Scholar
Andersen, O.K.: Phys. Rev. B 12, 3060 (1975).Google Scholar
Slater, J.C.: Phys. Rev. 51, 846 (1937).Google Scholar
Blaha, P., Schwarz, K., and Luitz, J.: Computer Code WIEN97 (Vienna University of Technology, 1997) (improved and update UNIX version of the original copyrighted WIEN code, which was published by P. Blaha, K. Schwarz, P. Sorontins, S.B. Trickey. Comput. Phys. Commun. 59, 399 (1990)).Google Scholar
Wei, S.H., Krakauer, H., and Weinert, M.: Phys. Rev. B 32, 7792 (1985).Google Scholar
Tyuterev, V.G. and Vast, N.: Comput. Mater. Sci. 38, 350353 (2006).Google Scholar
Aschcroft, N.W. and Mermin, N.D.: Solid State Physics (Cornell University, 1976).Google Scholar
Song, Y., Guo, Z.X., Yang, R., and Li, D.: Acta Mater. 49, 16471654 (2001).Google Scholar
Sahu, B.R.: Mater. Sci. Eng. 349, 7478 (1997).Google Scholar
Jacobs, H., Rechenbach, D., and Zachwieja, U.: J. Alloys Compd. 10, 227 (1995).Google Scholar
Billas, I.M.L., Becker, J.A., Châtelain, A., and de Heer, W.A.: Phys. Rev. Lett. 71, 40674070 (1993).Google Scholar
de Figueiredo, R.S., Kuhnen, C.A., and dos Santos, A.V.: J. Magn. Magn. Mater. 173, (1997).Google Scholar
Kuhnen, C.A. and dos Santos, A.V.: Solid State Commun. 85, (1993).Google Scholar
Matar, S.F., Demazeau, G., Hagenmuller, P., Armitage, J.G.M., and Riedi, P.C.. J. Eur. Solid State Inorg. Chem. 26, 517 (1989).Google Scholar
Yang, C.L., Abd-Elmeguid, M.M., Micklitz, H., Michels, G., Otto, J.W., Kong, Y., Xue, D.S., and Li, F.S.: J. Magn. Mater. 151, L19 (1995).Google Scholar
Lord, J.S., Armitage, J.G.M., Riedi, P.C, Matar, S.F., and Demazeau, G.: J. Phys. Condens. Mater. 6, 1779 (1994).CrossRefGoogle Scholar
Longworth, G.: In Mössbauer Spectroscopy Applied to Inorganic Chemistry, Vol. 1 (Plenum Press, London, 1984). Chapter 4.Google Scholar
Gutlich, P.. Link, R., and Trautwein, A.: Mossbauer Spectroscopy and Transition Metal Chemistry (Springer-Verlag, Berlin/Heidelberg/New York, 1978).Google Scholar
de Figueiredo, R.S., Foct, J., dos Santos, A.V., and Kuhnen, C.A.: J. Alloys Compd. 315, 4250 (2001).Google Scholar
Paduani, C.: J. Magn. Magn. Mater. 278, 231 (2004).Google Scholar
Duff, K.J.: Phys. Rev. B 9, 66 (1974).Google Scholar
Wdowikand, U.D. and Ruebenbauer, K.: Phys. Rev. B 76, 155118 (2007).Google Scholar
Dufek, P., Blaha, P., and Schwarz, K.: Phys. Rev. Lett. 75, 3545 (1995).Google Scholar
Peltzer y Blancá, E.L., Desimoni, J., Christensen, N.E., Emmerich, H., and Cottenier, S.: Phys. Status Solidi B 246, 909928 (2009). DOI: 10.1002/pssb.200844401.Google Scholar
Paduani, C., Krause, J.C., and J. Magn. Magn. Mater. 138, 109 (1994).Google Scholar
dos Santos, A.V.: Physica B 387, 136142 (2007).Google Scholar
dos Santos, A.V.: Solid State Commun. 151, 187192 (2011).Google Scholar
Kuhnen, C.A. and dos Santos, A.V.: Eur. J. Solid State Inorg. Chem. 182, 3183 (2009).Google Scholar
Kuhnen, C.A., Krause, J.C., and dos Santos, A.V.: Physica B Condens. Matter (2006).Google Scholar
dos Santos, A.V.: J. Alloys Compd. (2004).Google Scholar
Kuhnen, C.A., Krause, J.C., and Santos, A.V.: J. Mater. Sci. 42, 22822289 (2007).Google Scholar