Determination of Cobalt Spin-Diffusion Length in Co/Cu Multilayered Heterojunction Nanocylinders Based on Valet-Fert Model.
Saeko MizoguchiMasamitsu HayashidaTakeshi OhgaiPublished in: Nanomaterials (Basel, Switzerland) (2021)
Anodized aluminum oxide (AAO) nanochannels of diameter, D, of ~50 nm and length, L, of ~60 µm (L/D: approx. 1200 in the aspect ratio), were synthesized and applied as an electrode for the electrochemical growth of Co/Cu multilayered heterojunction nanocylinders. We synthesized numerous Co/Cu multilayered nanocylinders by applying a rectangular pulsed potential deposition method. The Co layer thickness, t
Co, ranged from ~8 to 27 nm, and it strongly depended on the pulsed-potential condition for Co layers, E
Co. The Cu layer thickness, t
Cu, was kept at less than 4 nm regardless of E
Co. We applied an electrochemical in situ contact technique to connect a Co/Cu multilayered nanocylinder with a sputter-deposited Au thin layer. Current perpendicular-to-plane giant magnetoresistance (CPP-GMR) effect reached up to ~23% in a Co/Cu multilayered nanocylinder with ~4760 Co/Cu bilayers (t
Cu: 4 nm and t
Co: 8.6 nm). With a decrease in t
Co, (ΔR/R
p)-1 was linearly reduced based on the Valet-Fert equation under the condition of t
F > l
F
sf and t
N < l
N
sf. The cobalt spin-diffusion length, l
Co
sf, was estimated to be ~12.5 nm.