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Título

Room-temperature tunnel magnetoresistance across biomolecular tunnel junctions based on ferritin

AutorKaruppannan, Senthil Kumar; Reddy Putluru, S. S.; Herng, Tun Seng; Ding, Jun; Chi, Xiao; Barco, Enrique del; Roche, Stephan CSIC ORCID; Yu, Xiaojiang; Yakovlev, Nikolai; Lim, Sierin
Fecha de publicación20-may-2021
EditorIOP Publishing
CitaciónJournal of Physics: Materials 4: 035003(2021)
ResumenWe report exceptionally large tunnel magnetoresistance (TMR) for biomolecular tunnel junctions based on ferritins immobilized between Ni and EGaIn electrodes. Ferritin stores iron in the form of ferrihydrite nanoparticles (NPs) and fulfills the following roles: (a) it dictates the tunnel barrier, (b) it magnetically decouples the NPs from the ferromagnetic (FM) electrode, (c) it stabilizes the NPs, and (d) it acts as a spin filter reducing the complexity of the tunnel junctions since only one FM electrode is required. The mechanism of charge transport is long-range tunneling which results in TMR of 60 ± 10% at 200 K and 25 ± 5% at room temperature. We propose a magnon-assisted transmission to explain the substantially larger TMR switching fields (up to 1 Tesla) than the characteristic coercive fields (a few Gauss) of ferritin ferrihydrite particles at T < 20 K. These results highlight the genuine potential of biomolecular tunnel junctions in designing functional nanoscale spintronic devices.
Versión del editorhttp://doi.org/10.1088/2515-7639/abfa79
URIhttp://hdl.handle.net/10261/265689
DOI10.1088/2515-7639/abfa79
Identificadoresdoi: 10.1088/2515-7639/abfa79
issn: 2515-7639
Aparece en las colecciones: (CIN2) Artículos




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