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Spin-transfer torque switching in nanopillar superconducting-magnetic hybrid Josephson junctions

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arxiv 1410.4529 v1 pith:2OI377PO submitted 2014-10-16 cond-mat.supr-con

classification cond-mat.supr-con
keywords devicesmagneticspin-transfertorquejosephsonsuperconductingswitchingcritical
verification ladder T0 review T1 audit T2 compute T3 formal

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The combination of superconducting and magnetic materials to create novel superconducting devices has been motivated by the discovery of Josephson critical current (Ics) oscillations as a function of magnetic layer thickness and the demonstration of devices with switchable critical currents. However, none of the hybrid devices have shown any spintronic effects, such as spin-transfer torque, which are currently used in room-temperature magnetic devices, including spin-transfer torque random-access memory and spin-torque nano-oscillators. We have developed nanopillar Josephson junctions with a minimum feature size of 50 nm and magnetic barriers exhibiting magnetic pseudo-spin-valve behavior at 4 K. These devices allow current-induced magnetization switching that results in 20-fold changes in Ics. The current-induced magnetic switching is consistent with spin-transfer torque models for room-temperature magnetic devices. Our work demonstrates that devices that combine superconducting and spintronic functions show promise for the development of a nanoscale, nonvolatile, cryogenic memory technology.

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  1. Quantized resonant tunneling effect in Josephson junctions with ferromagnetic bilayers

    cond-mat.supr-con 2025-04 conditional novelty 6.0 of 10

    In 1D SF1F2S Josephson junctions, a barrier at the F1/F2 interface creates critical-current resonance peaks at Q_i d_i = (n_i + 1/2)π, attributed to zero-spin-projection triplet pairs, with accumulated phase setting t...

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