TY - JOUR
T1 - Possibility of martensite transition in Pt-Y-Ga (Y=Cr, Mn, and Fe) system
T2 - An ab-initio calculation of the bulk mechanical, electronic and magnetic properties
AU - Roy, Tufan
AU - Chakrabarti, Aparna
N1 - Funding Information:
Authors thank P.D. Gupta, G.S. Lodha and P.A. Naik for facilities and encouragement throughout the work. The scientific computing group, computer centre of RRCAT, Indore and P. Thander are thanked for help in installing and support in running the codes. S. Singh, S.R. Barman, C. Kamal, M. Baral, and K. Mondal are thanked for useful discussion. T.R. thanks HBNI, RRCAT for financial support.
Publisher Copyright:
© 2015 Published by Elsevier B.V.
PY - 2016/3/1
Y1 - 2016/3/1
N2 - Using first principles calculations based on density functional theory we have studied the effects of Fe and Cr doping at the Mn site on mechanical, electronic, and magnetic properties of Pt2MnGa and Ni2MnGa. We predict on the basis of formation energy that all the substituted X2Mn1-xYxGa alloys (x=0.00, 0.25, 0.75, 1.00; X=Pt, Ni; Y=Fe and Cr) are stable materials. Further, all the substituted materials which we have studied here are likely to undergo martensite transition. In this work, we have reported how the stability of the austenite and martensite phase varies with the extent of substitution by Fe as well as Cr at the Mn site. Further, we study the bulk mechanical properties of the austenite and martensite phases of the stoichiometric systems only. We observe that Pt-based systems are inherently much less brittle in comparison to the Ni-based systems studied here. We also study the magnetic properties. Interestingly, contrary to the unsubstituted case as well as the case when Mn is substituted by Fe, the substitution by Cr at the Mn site leads to lowering of energy in case of an intra-sublattice anti-ferromagnetic configuration compared to the ferromagnetic configuration.
AB - Using first principles calculations based on density functional theory we have studied the effects of Fe and Cr doping at the Mn site on mechanical, electronic, and magnetic properties of Pt2MnGa and Ni2MnGa. We predict on the basis of formation energy that all the substituted X2Mn1-xYxGa alloys (x=0.00, 0.25, 0.75, 1.00; X=Pt, Ni; Y=Fe and Cr) are stable materials. Further, all the substituted materials which we have studied here are likely to undergo martensite transition. In this work, we have reported how the stability of the austenite and martensite phase varies with the extent of substitution by Fe as well as Cr at the Mn site. Further, we study the bulk mechanical properties of the austenite and martensite phases of the stoichiometric systems only. We observe that Pt-based systems are inherently much less brittle in comparison to the Ni-based systems studied here. We also study the magnetic properties. Interestingly, contrary to the unsubstituted case as well as the case when Mn is substituted by Fe, the substitution by Cr at the Mn site leads to lowering of energy in case of an intra-sublattice anti-ferromagnetic configuration compared to the ferromagnetic configuration.
KW - Antiferromagnetism
KW - Density functional theory
KW - Elastic constants
KW - Heusler alloys
KW - Martensite transition
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U2 - 10.1016/j.jmmm.2015.11.001
DO - 10.1016/j.jmmm.2015.11.001
M3 - Article
AN - SCOPUS:84946561223
SN - 0304-8853
VL - 401
SP - 929
EP - 937
JO - Journal of Magnetism and Magnetic Materials
JF - Journal of Magnetism and Magnetic Materials
ER -