TY - JOUR
T1 - Abnormal thermal expansion in anti-perovskite manganese nitride
AU - Sun, Ying
AU - Wen, Yongchun
AU - Chu, Lihua
AU - Nie, Man
AU - Wang, Cong
PY - 2009/5
Y1 - 2009/5
N2 - The thermal expansion properties of anti-perovskite Mn3XN (X=Ga, Zn, Sn, Cu) compounds were investigated by X-ray diffraction at different temperatures, and a large negative thermal expansion effect in the compounds was observed. Near magnetic transition, abrupt lattice contraction such as Mn3ZnN, Mn3CuN, Mn3SnN does not always happen. The peculiar thermal expansion behavior of the compounds and its relationship with the different valence electrons at the X site were discussed. The results show that the abnormal thermal expansion behavior is related to the number of valence electrons at the X site and 3 valence electrons is beneficial to obtain a compound with negative thermal expansion. The negative thermal expansion coefficient value and the temperature range of the compound could be adjusted by doping at the X site in Mn3XN. For example, the negative thermal expansion temperature range of Mn3Zn0.5Ge0.5N can reach 100 K, with a thermal expansion coefficient of -7.15 × 10-6/K. For Mn3GaN and Mn3Zn0.7Sn0.3N, their lattice constants almost remain constant with the increase of temperature at around room temperature, implying the occurrence of near zero thermal expansion.
AB - The thermal expansion properties of anti-perovskite Mn3XN (X=Ga, Zn, Sn, Cu) compounds were investigated by X-ray diffraction at different temperatures, and a large negative thermal expansion effect in the compounds was observed. Near magnetic transition, abrupt lattice contraction such as Mn3ZnN, Mn3CuN, Mn3SnN does not always happen. The peculiar thermal expansion behavior of the compounds and its relationship with the different valence electrons at the X site were discussed. The results show that the abnormal thermal expansion behavior is related to the number of valence electrons at the X site and 3 valence electrons is beneficial to obtain a compound with negative thermal expansion. The negative thermal expansion coefficient value and the temperature range of the compound could be adjusted by doping at the X site in Mn3XN. For example, the negative thermal expansion temperature range of Mn3Zn0.5Ge0.5N can reach 100 K, with a thermal expansion coefficient of -7.15 × 10-6/K. For Mn3GaN and Mn3Zn0.7Sn0.3N, their lattice constants almost remain constant with the increase of temperature at around room temperature, implying the occurrence of near zero thermal expansion.
KW - Abnormal thermal expansion
KW - Anti-perovskite
KW - Magnetic transition
KW - Manganese nitrides
UR - https://www.scopus.com/pages/publications/66149102895
M3 - 文章
AN - SCOPUS:66149102895
SN - 0454-5648
VL - 37
SP - 724-727+732
JO - Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society
JF - Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society
IS - 5
ER -