TY - JOUR
T1 - Zero Thermal Expansion Behavior in High-Entropy Anti-Perovskite Mn3Fe0.2Co0.2Ni0.2Mn0.2Cu0.2N
AU - Luo, Jiechen
AU - Zou, Kaixin
AU - Wang, Bing
AU - Yuan, Xiuliang
AU - An, Shihai
AU - Ma, Zhijie
AU - Shi, Kewen
AU - Deng, Sihao
AU - Xu, Juping
AU - Yin, Wen
AU - Wang, Wei Hua
AU - Wang, Cong
AU - Sun, Ying
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/12/23
Y1 - 2024/12/23
N2 - The exploration of the non-collinear antiferromagnetic (AFM) phase holds promise for the discovery of zero thermal expansion (ZTE) materials, which is of great significance to resist the temperature effect in aerospace and precision engineering fields. Currently, there is still a lack of effective approaches to regulate this special AFM phase. In this work, a non-collinear AFM phase has been obtained in the anti-perovskite compound Mn3Fe0.2Co0.2Ni0.2Mn0.2Cu0.2N proposed by high-entropy engineering. Utilizing neutron powder diffraction (NPD) analysis, the magnetic structure is resolved to be a triangular AFM phase with a k = [0, 0, 0] and a ferromagnetic (FM) component located at the corner of the cubic structure, which belongs to the R-3 space group. Particularly, it presents ZTE behavior in a wide temperature range from 10 to 180 K. In-situ NPD analysis reveals that the negative thermal expansion attributed to magnetic evolution almost offsets the normal positive thermal expansion quantified by the Debye formula. Further first principles calculations reveal that the specific AFM phase derives from the AFM-type nearest neighboring magnetic exchange interactions and the easy-axis-type magnetic anisotropy. This demonstration offers an efficient strategy for designing magnetic structures and achieving ZTE over a wide temperature range.
AB - The exploration of the non-collinear antiferromagnetic (AFM) phase holds promise for the discovery of zero thermal expansion (ZTE) materials, which is of great significance to resist the temperature effect in aerospace and precision engineering fields. Currently, there is still a lack of effective approaches to regulate this special AFM phase. In this work, a non-collinear AFM phase has been obtained in the anti-perovskite compound Mn3Fe0.2Co0.2Ni0.2Mn0.2Cu0.2N proposed by high-entropy engineering. Utilizing neutron powder diffraction (NPD) analysis, the magnetic structure is resolved to be a triangular AFM phase with a k = [0, 0, 0] and a ferromagnetic (FM) component located at the corner of the cubic structure, which belongs to the R-3 space group. Particularly, it presents ZTE behavior in a wide temperature range from 10 to 180 K. In-situ NPD analysis reveals that the negative thermal expansion attributed to magnetic evolution almost offsets the normal positive thermal expansion quantified by the Debye formula. Further first principles calculations reveal that the specific AFM phase derives from the AFM-type nearest neighboring magnetic exchange interactions and the easy-axis-type magnetic anisotropy. This demonstration offers an efficient strategy for designing magnetic structures and achieving ZTE over a wide temperature range.
KW - anti-perovskite
KW - first principles calculations
KW - high-entropy materials
KW - non-collinear antiferromagnetism
KW - zero thermal expansion
UR - https://www.scopus.com/pages/publications/85204103569
U2 - 10.1002/adfm.202410608
DO - 10.1002/adfm.202410608
M3 - 文章
AN - SCOPUS:85204103569
SN - 1616-301X
VL - 34
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 52
M1 - 2410608
ER -