Safak Mürşide, Alper Mürsel, Kockar Hakan
Physics Department, Science and Literature Faculty, Uludag University, Gor0kle, Bursa 16059, Turkey.
J Nanosci Nanotechnol. 2008 Feb;8(2):854-60. doi: 10.1166/jnn.2008.b242.
Ferromagnetic/non-ferromagnetic Co/Cu superlattices were grown on polycrystalline Titanium (Ti) from a single electrolyte by electrodeposition. Microstructure and magnetoresistance (MR) of the superlattices were investigated as a function of the electrolyte pH as well as the layer thicknesses. Structural characterisation by X-ray diffraction (XRD) showed that the superlattices have face-centred cubic (fcc) structure with a strong (111) texture at the studied pH levels, but the texture degree is affected by the electrolyte pH. The scanning electron microscope (SEM) studies revealed that the superlattices grown at low pH (2.0) have smoother surfaces compared to those grown at high pH (3.0). The superlattices exhibited either anisotropic magnetoresistance (AMR) or giant magnetoresistance (GMR) depending on the Cu layer thickness. The shape of MR curves changes depending on the combination of Co and Cu layer thicknesses. The superlattices with Co layers less than 3 nm and Cu layers less than 2 nm have broad and non-saturating curves, indicating the predominance of a superparamagnetic contribution, possibly due to the discontinuous nature of the ferromagnetic (Co) layer. For superlattices with the same bilayer and total thicknesses, the GMR magnitude decreased as the electrolyte pH increased. Besides possible structural differences such as the texture degree and the surface roughness, this may arises from the variation in the Cu content of the ferromagnetic layers caused by the electrolyte pH.
通过电沉积从单一电解质中在多晶钛(Ti)上生长出铁磁/非铁磁Co/Cu超晶格。研究了超晶格的微观结构和磁电阻(MR)与电解质pH值以及层厚度的关系。X射线衍射(XRD)进行的结构表征表明,在所研究的pH值水平下,超晶格具有面心立方(fcc)结构且具有很强的(111)织构,但织构程度受电解质pH值影响。扫描电子显微镜(SEM)研究表明,与在高pH值(3.0)下生长的超晶格相比,在低pH值(2.0)下生长的超晶格表面更光滑。根据Cu层厚度的不同,超晶格表现出各向异性磁电阻(AMR)或巨磁电阻(GMR)。MR曲线的形状根据Co和Cu层厚度的组合而变化。Co层小于3nm且Cu层小于2nm的超晶格具有宽且不饱和的曲线,表明超顺磁贡献占主导,这可能是由于铁磁(Co)层的不连续性。对于具有相同双层和总厚度的超晶格,随着电解质pH值的增加,GMR幅度降低。除了可能的结构差异如织构程度和表面粗糙度外,这可能源于电解质pH值导致的铁磁层中Cu含量的变化。