4.8 Article

Giant Piezomagnetism in Mn3NiN

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 10, Issue 22, Pages 18863-18868

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b03112

Keywords

piezomagnetism; antiperovskite; nonvolatile memory; antiferromagnet; spintronics

Funding

  1. European Community 7th Framework Programme [310748 DRREAM]
  2. UK EPSRC
  3. Henry Royce Institute through EPSRC [EP/R00661X/1]
  4. EPSRC Impact Acceleration Account funding: Localised magnetic repository (LoMaRe)-a high-performance nonvolatile memory device

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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 Neel 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 a (where a = 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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