TY - JOUR
T1 - First principle study on the electronic and magnetic properties in Zn 0.75Cr 0.25M (M = S, Se, Te) semiconductors
AU - Huang, Yu Hong
AU - Jie, Wan Qi
AU - Zha, Gang Qiang
PY - 2012/10/25
Y1 - 2012/10/25
N2 - Using the first-principle method, the structural, electronic and magnetic properties of Zn 0.75Cr 0.25M (M = S, Se, Te) have been investigated. The calculated formation energy and cohesive energy of Zn 0.75Cr 0.25M are negative and the absolute values of them decrease with the increase of atomic radius as well as the electronegativity of the anions. Zn 0.75Cr 0.25M display half-metallic characteristics with energy band gaps of 1.06, 0.65 and 0.83 eV, respectively. The conventional gaps for minority spin are 2.91, 2.16 and 1.75 eV for Zn 0.75Cr 0.25S, Zn 0.75Cr 0.25Se and Zn 0.75Cr 0.25Te respectively, which decrease with the increase of anion radius successively, similar to that observed in the binary compounds of ZnM. For all the three materials, exchange splitting energies Δx(pd) due to the effect of Cr 3d state are negative, implying that the effective potential is more attractive for minority spin than that for majority spin, and the absolute value of Δx(pd) decreases with the increase of atomic radius of anions. The calculated positive values of N0α suggest interactions between Zn-s and Cr-3d states are repulsive, while the negative values of N0β show that p-d interactions at the valence band are more attractive. All these conclusions demonstrate that Zn 0.75Cr 0.25M are promising candidates for practical applications in spintronics.
AB - Using the first-principle method, the structural, electronic and magnetic properties of Zn 0.75Cr 0.25M (M = S, Se, Te) have been investigated. The calculated formation energy and cohesive energy of Zn 0.75Cr 0.25M are negative and the absolute values of them decrease with the increase of atomic radius as well as the electronegativity of the anions. Zn 0.75Cr 0.25M display half-metallic characteristics with energy band gaps of 1.06, 0.65 and 0.83 eV, respectively. The conventional gaps for minority spin are 2.91, 2.16 and 1.75 eV for Zn 0.75Cr 0.25S, Zn 0.75Cr 0.25Se and Zn 0.75Cr 0.25Te respectively, which decrease with the increase of anion radius successively, similar to that observed in the binary compounds of ZnM. For all the three materials, exchange splitting energies Δx(pd) due to the effect of Cr 3d state are negative, implying that the effective potential is more attractive for minority spin than that for majority spin, and the absolute value of Δx(pd) decreases with the increase of atomic radius of anions. The calculated positive values of N0α suggest interactions between Zn-s and Cr-3d states are repulsive, while the negative values of N0β show that p-d interactions at the valence band are more attractive. All these conclusions demonstrate that Zn 0.75Cr 0.25M are promising candidates for practical applications in spintronics.
KW - Band structure
KW - Cohesive energy
KW - Electronic properties
KW - First principles
KW - Formation energy
KW - Magnetic properties
UR - http://www.scopus.com/inward/record.url?scp=84864397707&partnerID=8YFLogxK
U2 - 10.1016/j.jallcom.2012.06.017
DO - 10.1016/j.jallcom.2012.06.017
M3 - 文章
AN - SCOPUS:84864397707
SN - 0925-8388
VL - 539
SP - 271
EP - 275
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
ER -