Nykiel Anna, Walcarius Alain, Kac Malgorzata
Institute of Nuclear Physics, Polish Academy of Science, PL-31342 Kraków, Poland.
Université de Lorraine, CNRS, Laboratoire de Chimie Physique et Microbiologie pour les Matériaux et l'Environnement (LCPME), F-54000 Nancy, France.
Materials (Basel). 2025 Jun 4;18(11):2629. doi: 10.3390/ma18112629.
This study focused on investigations of FeCo and FeNi nanowires prepared by template-assisted electrodeposition in polycarbonate membranes. Nanowires with a diameter of 100 nm and length of 6 µm were grown at different cathodic potentials and electrolyte compositions. Scanning electron microscopy images revealed densely packed arrays of continuous nanowires with smooth surfaces without visible porosity, regardless of the applied potential. Chemical analysis of nanowires pointed out weak sensitivity of chemical composition on the electrodeposition potential in the case of FeCo nanowires, in contrast to FeNi nanowires, where the increase of the cathodic potential resulted in higher Ni content. X-ray diffraction studies showed polycrystalline structure for all samples indicating B2 phase (Pm-3m) with isotropic growth of FeCo nanowires and FeNi phase with a preferential growth along [111] direction in the case of FeNi nanowires. The peak broadening suggests a fine crystalline structure for both FeCo and FeNi materials with average crystallite sizes below 20 nm. Magnetic studies indicated an easy axis of magnetization parallel to the nanowire axis for all FeCo nanowires and potential-dependent anisotropy for FeNi nanowires. The present studies thus suggested the feasibility of producing segmented nanowires based on FeNi alloys, while poor chemical sensitivity to the applied potential was observed for the FeCo system.
本研究聚焦于通过模板辅助电沉积法在聚碳酸酯膜中制备的铁钴(FeCo)和铁镍(FeNi)纳米线。直径为100纳米、长度为6微米的纳米线在不同的阴极电位和电解液成分下生长。扫描电子显微镜图像显示,无论施加何种电位,连续纳米线都排列紧密,表面光滑,无可见孔隙。纳米线的化学分析表明,对于FeCo纳米线,化学成分对电沉积电位的敏感性较弱;与之形成对比的是,对于FeNi纳米线,阴极电位的增加会导致镍含量升高。X射线衍射研究表明,所有样品均为多晶结构,FeCo纳米线呈现B2相(Pm-3m)且各向同性生长,而FeNi纳米线呈现FeNi相且沿[111]方向择优生长。峰宽展表明FeCo和FeNi材料均具有微晶结构,平均晶粒尺寸小于20纳米。磁性研究表明,所有FeCo纳米线的易磁化轴均平行于纳米线轴,而FeNi纳米线的各向异性则与电位有关。因此,本研究表明基于FeNi合金制备分段纳米线具有可行性,而对于FeCo体系,观察到其对施加电位的化学敏感性较差。