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PUBMED FOR HANDHELDS

Journal Abstract Search


229 related items for PubMed ID: 32075968

  • 1. Creating zero-field skyrmions in exchange-biased multilayers through X-ray illumination.
    Guang Y, Bykova I, Liu Y, Yu G, Goering E, Weigand M, Gräfe J, Kim SK, Zhang J, Zhang H, Yan Z, Wan C, Feng J, Wang X, Guo C, Wei H, Peng Y, Tserkovnyak Y, Han X, Schütz G.
    Nat Commun; 2020 Feb 19; 11(1):949. PubMed ID: 32075968
    [Abstract] [Full Text] [Related]

  • 2. Electron Beam Lithography of Magnetic Skyrmions.
    Guang Y, Peng Y, Yan Z, Liu Y, Zhang J, Zeng X, Zhang S, Zhang S, Burn DM, Jaouen N, Wei J, Xu H, Feng J, Fang C, van der Laan G, Hesjedal T, Cui B, Zhang X, Yu G, Han X.
    Adv Mater; 2020 Oct 19; 32(39):e2003003. PubMed ID: 32812294
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  • 3. Creation of Magnetic Skyrmion Bubble Lattices by Ultrafast Laser in Ultrathin Films.
    Je SG, Vallobra P, Srivastava T, Rojas-Sánchez JC, Pham TH, Hehn M, Malinowski G, Baraduc C, Auffret S, Gaudin G, Mangin S, Béa H, Boulle O.
    Nano Lett; 2018 Nov 14; 18(11):7362-7371. PubMed ID: 30295499
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  • 5. Room-Temperature Skyrmions in an Antiferromagnet-Based Heterostructure.
    Yu G, Jenkins A, Ma X, Razavi SA, He C, Yin G, Shao Q, He QL, Wu H, Li W, Jiang W, Han X, Li X, Bleszynski Jayich AC, Amiri PK, Wang KL.
    Nano Lett; 2018 Feb 14; 18(2):980-986. PubMed ID: 29271208
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  • 6. Mirroring Skyrmions in Synthetic Antiferromagnets via Modular Design.
    Deng P, Zhuo F, Li H, Cheng Z.
    Nanomaterials (Basel); 2023 Feb 25; 13(5):. PubMed ID: 36903736
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  • 12. Anatomy of Skyrmionic Textures in Magnetic Multilayers.
    Li W, Bykova I, Zhang S, Yu G, Tomasello R, Carpentieri M, Liu Y, Guang Y, Gräfe J, Weigand M, Burn DM, van der Laan G, Hesjedal T, Yan Z, Feng J, Wan C, Wei J, Wang X, Zhang X, Xu H, Guo C, Wei H, Finocchio G, Han X, Schütz G.
    Adv Mater; 2019 Apr 25; 31(14):e1807683. PubMed ID: 30735264
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  • 13. Current-driven dynamics of skyrmions stabilized in MnSi nanowires revealed by topological Hall effect.
    Liang D, DeGrave JP, Stolt MJ, Tokura Y, Jin S.
    Nat Commun; 2015 Sep 24; 6():8217. PubMed ID: 26400204
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  • 14. Antiferromagnetic skyrmion repulsion based artificial neuron device.
    Bindal N, Ian CAC, Lew WS, Kaushik BK.
    Nanotechnology; 2021 Mar 04; 32(21):. PubMed ID: 33530074
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  • 16. Stabilization and Reversal of Skyrmion Lattice in Ta/CoFeB/MgO Multilayers.
    Qin Z, Wang Y, Zhu S, Jin C, Fu J, Liu Q, Cao J.
    ACS Appl Mater Interfaces; 2018 Oct 24; 10(42):36556-36563. PubMed ID: 30277060
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  • 17. Ferrimagnetic Skyrmions in Topological Insulator/Ferrimagnet Heterostructures.
    Wu H, Groß F, Dai B, Lujan D, Razavi SA, Zhang P, Liu Y, Sobotkiewich K, Förster J, Weigand M, Schütz G, Li X, Gräfe J, Wang KL.
    Adv Mater; 2020 Aug 24; 32(34):e2003380. PubMed ID: 32666575
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  • 19. Current-driven dynamics and inhibition of the skyrmion Hall effect of ferrimagnetic skyrmions in GdFeCo films.
    Woo S, Song KM, Zhang X, Zhou Y, Ezawa M, Liu X, Finizio S, Raabe J, Lee NJ, Kim SI, Park SY, Kim Y, Kim JY, Lee D, Lee O, Choi JW, Min BC, Koo HC, Chang J.
    Nat Commun; 2018 Mar 06; 9(1):959. PubMed ID: 29511179
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  • 20. The evolution of skyrmions in Ir/Fe/Co/Pt multilayers and their topological Hall signature.
    Raju M, Yagil A, Soumyanarayanan A, Tan AKC, Almoalem A, Ma F, Auslaender OM, Panagopoulos C.
    Nat Commun; 2019 Mar 06; 10(1):696. PubMed ID: 30842413
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