抗血小板
材料科学
凝聚态物理
自旋电子学
反铁磁性
磁性
磁化
联轴节(管道)
压电
铁磁性
磁场
纳米技术
复合材料
物理
图层(电子)
氮化物
量子力学
作者
D. Boldrin,Andrei P. Mihai,Bin Zou,Jan Zemen,Ryan Thompson,Ecaterina Ware,B.V. Neamţu,L. Ghivelder,Bryan D. Esser,David W. McComb,Peter K. Petrov,L. F. Cohen
标识
DOI:10.1021/acsami.8b03112
摘要
Controlling magnetism with electric field directly or through strain-driven piezoelectric coupling remains a key goal of spintronics. Here, we demonstrate that giant piezomagnetism, a linear magneto-mechanic coupling effect, is manifest in antiperovskite Mn3NiN, facilitated by its geometrically frustrated antiferromagnetism opening the possibility of new memory device concepts. Films of Mn3NiN with intrinsic biaxial strains of ±0.25% result in Néel transition shifts up to 60 K and magnetization changes consistent with theory. Films grown on BaTiO3 display a striking magnetization jump in response to uniaxial strain from the intrinsic BaTiO3 structural transition, with an inferred 44% strain coupling efficiency and a magnetoelectric coefficient α (where α = dB/dE) of 0.018 G cm/V. The latter agrees with the 1000-fold increase over Cr2O3 predicted by theory. Overall, our observations pave the way for further research into the broader family of Mn-based antiperovskites where yet larger piezomagnetic effects are predicted to occur at room temperature.
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