# Spin-Current Control by Induced Electric-Polarization Reversal in   Ni/hBN/Ni: A Cross-Correlation Material

**Authors:** Halimah Harfah, Yusuf Wicaksono, Muhammad Aziz Majidi, and Koichi, Kusakabe

arXiv: 1905.12252 · 2022-04-15

## TL;DR

This study uses ab-initio calculations to explore how electric polarization reversal in Ni/hBN/Ni structures can control spin currents, revealing a spin-filtering effect influenced by magnetic alignment and atomic arrangement.

## Contribution

It demonstrates the influence of atomic interface structure and magnetic alignment on spin-current control via electric polarization reversal in Ni/hBN/Ni.

## Key findings

- APC is the most stable magnetic alignment.
- Electric polarization reversal switches the spin current.
- Spin-filtering effect is achieved through electric field control.

## Abstract

We undertook an ab-initio study of hexagonal boron nitride (hBN) sandwiched between Ni(111) layers to examine the interface of this material structure. We considered Ni(111)/hBN/Ni(111) with a slab with three Ni atomic layers to determine the exact atom arrangement at the interface. The density functional theory calculations for 36 stacking arrangements, which are doubled with respect to the magnetic alignment of slabs in an anti-parallel configuration (APC) and parallel configuration (PC), revealed that the number of formed weak chemical bonds, in the pd-hybridization between the N and Ni atoms, is decisive. A maximum of two pd-hybridization bonds stabilized the structure, with APC proving to be the most favorable magnetic alignment, in line with the results of previous experimental studies. In the lowest energy state, an induced magnetic moment at an N site appears when N is moved closer to one of the Ni atoms. Interestingly, the moment direction is switched by the position of the N layer in the resulting bi-stable state with electrical polarization when APC is chosen. The transmission probability calculation of Ni/hBN/Ni having the determined interface structure at the center of the junction exhibits a spin-filtering effect where the spin-polarized current is controlled by the electric field when a field-induced reversal of the polarization is realized.

## Full text

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## Figures

7 figures with captions in the complete paper: https://tomesphere.com/paper/1905.12252/full.md

## References

39 references — full list in the complete paper: https://tomesphere.com/paper/1905.12252/full.md

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Source: https://tomesphere.com/paper/1905.12252