Role of Electronic Structure in the Martensitic Phase Transition of Ni_2Mn_<1-x>Sn_<1-x> Studied by Hard-X-Ray Photoelectron Spectroscopy and Ab Initio Calculation

Physical Review Letters Volume 104 Issue 17 Page 176401-1-176401-4 published_at 2010-04-26
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Title ( eng )
Role of Electronic Structure in the Martensitic Phase Transition of Ni_2Mn_<1-x>Sn_<1-x> Studied by Hard-X-Ray Photoelectron Spectroscopy and Ab Initio Calculation
Creator
Ye Mao
Miura Yoshio
Shirai Masafumi
Cui Yi-tao
Ueda Shigenori
Kobayashi Keisuke
Kainuma Ryosuke
Shishido Toetsu
Fukushima K
Kanomata Takeshi
Source Title
Physical Review Letters
Volume 104
Issue 17
Start Page 176401-1
End Page 176401-4
Abstract
We have revealed the underlying mechanism of the martensitic phase transition (MPT) in a new class of ferromagnetic shape memory alloys, Ni2Mn1+xSn1-x, by the combination of bulk-sensitive hard-x-ray photoelectron spectroscopy and a first-principles density-functional calculation. The Ni 3d eg state in the cubic phase systematically shifts towards the Fermi energy with an increase in the number of Mn atoms substituted in the Sn sites. An abrupt decrease of the intensity of the Ni 3d eg states upon MPT for x=0.36–0.42 has been observed in the vicinity of the Fermi level. The energy shift of the Ni 3d minority-spin eg state in the cubic phase originates from hybridization with the antiferromagnetically coupled Mn in the Sn site. Below the MPT temperature, the Ni 3d state splits into two levels located below and above the Fermi energy in order to achieve an energetically stable state.
NDC
Physics [ 420 ]
Language
eng
Resource Type journal article
Publisher
The American Physical Society
Date of Issued 2010-04-26
Rights
Copyright (c) 2010 The American Physical Society
Publish Type Version of Record
Access Rights open access
Source Identifier
[ISSN] 0031-9007
[DOI] 10.1103/PhysRevLett.104.176401
[NCID] AA00773679
[DOI] http://dx.doi.org/10.1103/PhysRevLett.104.176401