4.8 Article

Anomalous electrical magnetochiral effect by chiral spin-cluster scattering

Journal

NATURE COMMUNICATIONS
Volume 11, Issue 1, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-020-16751-2

Keywords

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Funding

  1. JSPS KAKENHI [JP18H04222, JP18H03676, JP19K14649]
  2. JST CREST [JPMJCR16F1, JPMJCR1874]

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The non-collinear spin configurations give rise to many nontrivial phenomena related to the Berry phase. They are often related to the vector and scalar spin chiralities. The scalar spin chirality leads to the topological Hall effect in metals, while the vector spin chirality to the ferroelectricity of spin origin, i.e., multiferroics in insulators. However, the role of the vector spin chirality in conducting systems has not yet been elucidated. Here we show theoretically that the spin correlation with vector spin chirality in chiral magnets scatters electrons asymmetrically, resulting in nonreciprocal transport phenomena, i.e., electrical magnetochiral effect (eMCE). This asymmetric scattering appears in the leading-order scattering term, implying a large nonreciprocity in the charge and spin currents. We find that the temperature and magnetic field dependence of the eMCE reproduces that observed in MnSi. Our results reveal the microscopic mechanism of eMCE and its potential in producing a large nonreciprocal response. The microscopic mechanism for nonreciprocity of electron transport in bulk materials remains less well understood. Here, the authors show that asymmetric electron scattering by two-spin clusters induce nonreciprocal current (electric current proportional to the square of the electric field) in magnetic metals.

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