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- W2894091918 abstract "As an alternative angular momentum carrier, magnons or spin waves can be utilized to encode information and breed magnon-based circuits with ultralow power consumption and non-Boolean data processing capability. In order to construct such a circuit, it is indispensable to design some electronic components with both long magnon decay and coherence length and effective control over magnon transport. Here we show that an all-insulating magnon junction composed of a magnetic insulator $({mathrm{MI}}_{1})$/antiferromagnetic insulator (AFI)/magnetic insulator $({mathrm{MI}}_{2})$ sandwich $({mathrm{Y}}_{3}{mathrm{Fe}}_{5}{mathrm{O}}_{12}$/NiO/${mathrm{Y}}_{3}{mathrm{Fe}}_{5}{mathrm{O}}_{12})$ can completely turn a thermogradient-induced magnon current on or off as the two ${mathrm{Y}}_{3}{mathrm{Fe}}_{5}{mathrm{O}}_{12}$ layers are aligned parallel or antiparallel. The magnon decay length in NiO is about $3.5--4.5$ nm between 100 and 200 K for thermally activated magnons. The insulating magnon valve (magnon junction), as a basic building block, possibly sheds light on the naissance of efficient magnon-based circuits, including non-Boolean logic, memory, diodes, transistors, magnon waveguides, and switches with sizable on-off ratios." @default.
- W2894091918 created "2018-10-05" @default.
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- W2894091918 date "2018-10-17" @default.
- W2894091918 modified "2023-10-17" @default.
- W2894091918 title "Magnon valves based on YIG/NiO/YIG all-insulating magnon junctions" @default.
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- W2894091918 doi "https://doi.org/10.1103/physrevb.98.134426" @default.
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