| Literature DB >> 33297342 |
Claudiu Locovei1,2, Nicolae Filipoiu2, Andrei Kuncser1, Anda-Elena Stanciu1, Ştefan Antohe2,3, Camelia-Florina Florica1, Andreea Costas1, Ionuţ Enculescu1, Luc Piraux4, Victor Kuncser1, Vlad-Andrei Antohe2,4.
Abstract
We report the facile and low-cost preparation as well as detailed characterization of dense arrays of passivated ferromagnetic nickel (Ni) nanotubes (NTs) vertically-supported onto solid Au-coated Si substrates. The proposed fabrication method relies on electrochemical synthesis within the nanopores of a supported anodic aluminum oxide (AAO) template and allows for fine tuning of the NTs ferromagnetic walls just by changing the cathodic reduction potential during the nanostructures' electrochemical growth. Subsequently, the experimental platform allowed further passivation of the Ni NTs with the formation of ultra-thin antiferromagnetic layers of nickel oxide (NiO). Using adequately adapted magnetic measurements, we afterwards demonstrated that the thickness of the NT walls and of the thin antiferromagneticNiO layer, strongly influences the magnetic behavior of the dense array of exchange-coupled Ni/NiO NTs. The specific magnetic properties of these hybrid ferromagnetic/antiferromagnetic nanosystems were then correlated with the morpho-structural and geometrical parameters of the NTs, as well as ultimately strengthened by additionally-implemented micromagnetic simulations. The effect of the unidirectional anisotropy strongly amplified by the cylindrical geometry of the ferromagnetic/antiferromagnetic interfaces has been investigated with the magnetic field applied both parallel and perpendicular to the NTs axis.Entities:
Keywords: dense arrays of vertically-aligned heterostructured nickel/nickel oxide (Ni/NiO) nanotubes (NTs); exchange bias field and coercivity of cylindrical ferromagnetic/antiferromagnetic Ni/NiO interfaces; micromagnetic simulations; supported anodic aluminum oxide (AAO) nanoporous media; template-assisted electrochemical synthesis; unidirectional anisotropy in quasi one-dimensional (1D) nanostructures
Year: 2020 PMID: 33297342 PMCID: PMC7762250 DOI: 10.3390/nano10122444
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076