| Literature DB >> 32509494 |
Wael M Mohammed1, Igor V Yanilkin1, Amir I Gumarov1, Airat G Kiiamov1, Roman V Yusupov1, Lenar R Tagirov1,2.
Abstract
Single-layer vanadium nitride (VN) and bilayer Pd0.96Fe0.04/VN and VN/Pd0.92Fe0.08 thin-film heterostructures for possible spintronics applications were synthesized on (001)-oriented single-crystalline magnesium oxide (MgO) substrates utilizing a four-chamber ultrahigh vacuum deposition and analysis system. The VN layers were reactively magnetron sputtered from a metallic vanadium target in Ar/N2 plasma, while the Pd1- x Fe x layers were deposited by co-evaporation of metallic Pd and Fe pellets from calibrated effusion cells in a molecular beam epitaxy chamber. The VN stoichiometry and Pd1- x Fe x composition were controlled by X-ray photoelectron spectroscopy. In situ low-energy electron diffraction and ex situ X-ray diffraction show that the 30 nm thick single-layer VN as well as the double-layer VN(30 nm)/Pd0.92Fe0.08(12 nm) and Pd0.96Fe0.04(20 nm)/VN(30 nm) structures have grown cube-on-cube epitaxially. Electric resistance measurements demonstrate a metallic-type temperature dependence for the VN film with a small residual resistivity of 9 μΩ·cm at 10 K, indicating high purity and structural quality of the film. The transition to the superconducting state was observed at 7.7 K for the VN film, at 7.2 K for the Pd0.96Fe0.04/VN structure and at 6.1 K for the VN/Pd0.92Fe0.08 structure with the critical temperature decreasing due to the proximity effect. Contrary to expectations, all transitions were very sharp with the width ranging from 25 mK for the VN film to 50 mK for the VN/Pd0.92Fe0.08 structure. We propose epitaxial single-crystalline thin films of VN and heteroepitaxial Pd1- x Fe x /VN and VN/Pd1- x Fe x (x ≤ 0.08) structures grown on MgO(001) as the materials of a choice for the improvement of superconducting magnetic random access memory characteristics.Entities:
Keywords: epitaxial growth; epitaxial superconductor–ferromagnet heterostructure; palladium–iron alloy (PdFe); superconducting spintronics; vanadium nitride (VN)
Year: 2020 PMID: 32509494 PMCID: PMC7237814 DOI: 10.3762/bjnano.11.65
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1LEED patterns of (a) pristine MgO annealed at 800 °C, (b) the VN film, (c) the VN/Pd0.92Fe0.08 and (d) Pd0.96Fe0.04/VN structures on the MgO(001) substrate. All patterns were taken at an electron energy of 140 eV.
Figure 2XRD patterns of pristine MgO substrate, VN, Pd0.96Fe0.04 (prepared in a separate deposition experiment) and Pd0.96Fe0.04/VN.
Figure 3In situ XPS spectra of (a) Fe and (b) Pd of the VN/Pd0.92Fe0.08 sample, and of (c) V and (d) N of the VN film.
Figure 4Saturation magnetization Ms(T) as a function of the temperature of the Pd0.96Fe0.04/VN (green symbols) and VN/Pd0.92Fe0.08 (red symbols) heterostructures measured in a magnetic field of 200 Oe.
Figure 5Temperature dependence of the electrical resistance of the VN film and the Pd0.96Fe0.04/VN and VN/Pd0.92Fe0.08 heterostructures: (a) full temperature range, (b) low-temperature region.
Electrical and superconducting properties of the VN film and the Pd0.96Fe0.04/VN and VN/Pd0.92Fe0.08 heteroepitaxial structures on MgO(001).
| structure | RRR | Δ | |
| VN(30 nm) | 5.2 | 7.7 | 25 |
| Pd0.96Fe0.04(20 nm)/VN(30 nm) | 3.5 | 7.2 | 37 |
| VN(30 nm)/Pd0.92Fe0.08(12 nm) | 2.6 | 6.1 | 50 |