2014•IEEE Transactions on MagneticsRequires access

Domain-Wall-Assisted Switching of Chains of Coupled Nanomagnets

Edit Varga, György Csaba, Gary H. Bernstein, Wolfgang Porod

Open publisher page 6 citations

Abstract

We experimentally demonstrate that the stray field of a propagating transverse domain wall can switch chains of coupled nanomagnets (nanomagnet wires) to a magnetically ordered, low energy ground state. We fabricated nanomagnet wires consisting of 6 and 20 nanomagnets that were placed adjacent to a domain-wall conductor. Magnetic force microscope images clearly show the nanomagnet wire switching from an initial metastable state to an ordered ground state. This can be exploited for controlled order of nanomagnet switching and for energy-efficient clocking of nanomagnet logic devices. Reference structures were fabricated and characterized to prove our assumptions.

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What this paper is about

We experimentally demonstrate that the stray field of a propagating transverse domain wall can switch chains of coupled nanomagnets (nanomagnet wires) to a magnetically ordered, low energy ground state. We fabricated nanomagnet wires consisting of 6 and 20 nanomagnets that were placed adjacent to a domain-wall conductor. Magnetic force microscope images clearly show the nanomagnet wire switching from an initial metastable state to an ordered ground state. This can be exploited for controlled order of nanomagnet switching and for energy-efficient clocking of nanomagnet logic devices. Reference structures were fabricated and characterized to prove our assumptions.

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Available abstract

We experimentally demonstrate that the stray field of a propagating transverse domain wall can switch chains of coupled nanomagnets (nanomagnet wires) to a magnetically ordered, low energy ground state. We fabricated nanomagnet wires consisting of 6 and 20 nanomagnets that were placed adjacent to a domain-wall conductor. Magnetic force microscope images clearly show the nanomagnet wire switching from an initial metastable state to an ordered ground state. This can be exploited for controlled order of nanomagnet switching and for energy-efficient clocking of nanomagnet logic devices. Reference structures were fabricated and characterized to prove our assumptions.

Key concepts: Nanomagnet, Metastability, Domain wall (magnetism), Magnetic domain, Materials science, Condensed matter physics, Magnetic field, Nanotechnology

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