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PUBMED FOR HANDHELDS

Journal Abstract Search


151 related items for PubMed ID: 36331209

  • 41. Control of morphology and formation of highly geometrically confined magnetic skyrmions.
    Jin C, Li ZA, Kovács A, Caron J, Zheng F, Rybakov FN, Kiselev NS, Du H, Blügel S, Tian M, Zhang Y, Farle M, Dunin-Borkowski RE.
    Nat Commun; 2017 Jun 05; 8():15569. PubMed ID: 28580935
    [Abstract] [Full Text] [Related]

  • 42. Nanoscale Skyrmions in a Nonchiral Metallic Multiferroic: Ni2MnGa.
    Phatak C, Heinonen O, De Graef M, Petford-Long A.
    Nano Lett; 2016 Jul 13; 16(7):4141-8. PubMed ID: 27186990
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  • 43. High field magnetic transport measurements of FeGe thin plates.
    Li L, Wang W, Xu X, Wang N, Wang Z, Song D, Qu Z, Du H.
    J Phys Condens Matter; 2023 Aug 08; 35(44):. PubMed ID: 37506705
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  • 44. Magnetic skyrmions in FePt nanoparticles having Reuleaux 3D geometry: a micromagnetic simulation study.
    Stavrou VD, Kourounis D, Dimakopoulos K, Panagiotopoulos I, Gergidis LN.
    Nanoscale; 2019 Nov 14; 11(42):20102-20114. PubMed ID: 31612890
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  • 45. Hopfion rings in a cubic chiral magnet.
    Zheng F, Kiselev NS, Rybakov FN, Yang L, Shi W, Blügel S, Dunin-Borkowski RE.
    Nature; 2023 Nov 14; 623(7988):718-723. PubMed ID: 37993571
    [Abstract] [Full Text] [Related]

  • 46. Room-Temperature Zero-Field kπ-Skyrmions and Their Field-Driven Evolutions in Chiral Nanodisks.
    Zhang Y, Shi M, Wang W, Xu X, Tian M, Song D, Du H.
    Nano Lett; 2023 Nov 22; 23(22):10205-10212. PubMed ID: 37942916
    [Abstract] [Full Text] [Related]

  • 47. Current-induced skyrmion dynamics in constricted geometries.
    Iwasaki J, Mochizuki M, Nagaosa N.
    Nat Nanotechnol; 2013 Oct 22; 8(10):742-7. PubMed ID: 24013132
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  • 48. Microwave field frequency and current density modulated skyrmion-chain in nanotrack.
    Ma F, Ezawa M, Zhou Y.
    Sci Rep; 2015 Oct 15; 5():15154. PubMed ID: 26468929
    [Abstract] [Full Text] [Related]

  • 49. Gateable Skyrmion Transport via Field-induced Potential Barrier Modulation.
    Fook HT, Gan WL, Lew WS.
    Sci Rep; 2016 Feb 17; 6():21099. PubMed ID: 26883575
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  • 52. Room-Temperature Creation and Spin-Orbit Torque Manipulation of Skyrmions in Thin Films with Engineered Asymmetry.
    Yu G, Upadhyaya P, Li X, Li W, Kim SK, Fan Y, Wong KL, Tserkovnyak Y, Amiri PK, Wang KL.
    Nano Lett; 2016 Mar 09; 16(3):1981-8. PubMed ID: 26848783
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  • 53. Zero-Field Nucleation and Fast Motion of Skyrmions Induced by Nanosecond Current Pulses in a Ferrimagnetic Thin Film.
    Quessab Y, Xu JW, Cogulu E, Finizio S, Raabe J, Kent AD.
    Nano Lett; 2022 Aug 10; 22(15):6091-6097. PubMed ID: 35877983
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  • 54. Room-temperature chiral magnetic skyrmions in ultrathin magnetic nanostructures.
    Boulle O, Vogel J, Yang H, Pizzini S, de Souza Chaves D, Locatelli A, Menteş TO, Sala A, Buda-Prejbeanu LD, Klein O, Belmeguenai M, Roussigné Y, Stashkevich A, Chérif SM, Aballe L, Foerster M, Chshiev M, Auffret S, Miron IM, Gaudin G.
    Nat Nanotechnol; 2016 May 10; 11(5):449-54. PubMed ID: 26809057
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  • 57. Current-induced shuttlecock-like movement of non-axisymmetric chiral skyrmions.
    Murooka R, Leonov AO, Inoue K, Ohe JI.
    Sci Rep; 2020 Jan 15; 10(1):396. PubMed ID: 31941954
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  • 59. ac current generation in chiral magnetic insulators and Skyrmion motion induced by the spin Seebeck effect.
    Lin SZ, Batista CD, Reichhardt C, Saxena A.
    Phys Rev Lett; 2014 May 09; 112(18):187203. PubMed ID: 24856718
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