晶体化学,Rietveld分析,钴-铒纳米铁氧体的结构和电学性能

E. Sumalatha, D. Ravinder, N. Maramu, Shubha, B. R. Reddy, S. Katlakunta, Koteswari Gollapudi, Rajender Thota
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引用次数: 1

摘要

采用柠檬酸盐-凝胶自燃烧法制备了配方为(x = 0、0.005、0.010、0.015、0.020、0.025、0.030)的钴-铒纳米铁氧体。采用XRD、EDAX、FESEM、AFM、FTIR等方法对制备的粉体进行了表征,并对其直流电阻率进行了表征。采用XRD Rietveld分析、SEM、TEM和EDAX分析等方法研究了材料的光谱、结构、磁性和电学性能。CEF纳米颗粒的XRD谱图证实其为单相立方脊状结构。计算了晶格常数(a)、晶格体积(v)、平均晶粒尺寸(D)、x射线密度(dx)、体积密度(D)、孔隙率(p)、孔空间百分比(p %)、表面积(s)、应变(ε)、位错密度(δ)、离子半径、键长和期望长度等结构变量。扫描电镜和透射电镜结果表明,颗粒均质,并伴有团簇,无杂质吸附。TEM分析给出了纳米晶铁氧体的粒度信息,EDAX分析确定了元素组成。FTIR光谱显示,在四面体(A)和八面体(B)上出现了两个拱形频带(ν1和ν2),代表振动。采用双探头法在30℃-600℃范围内测量样品的电阻率(DC)。XRD Rietveld分析证实晶粒尺寸在20.84 nm - 14.40 nm之间,SEM分析表明晶粒形成团聚体,TEM分析表明晶粒尺寸在24 nm - 16 nm之间。直流电测量表明,电阻率随温度的升高而持续下降,而掺杂量的增加会降低居里温度。随着Er+3含量的增加(x = 0.00 ~ 0.030),饱和磁化强度(Ms)、剩余磁化强度(Mr)、矫顽力(Hc)、方位比(R = Mr/Ms)、磁矩(nB)等磁性参数均发生了变化。增加的铒含量降低了磁化强度,从而使样品转化为软磁材料。观察结果表明,磁性能与铒取代关系密切,矫顽力随各向异性常数的变化而变化。由于磁偶极子的存在,铒取代钴铁氧体可用于电磁应用。本文研究了不同成分的Er3+取代铁对钴铁氧体结构性能和电阻率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crystal Chemistry, Rietveld Analysis, Structural and Electrical Properties of Cobalt-Erbium Nano-Ferrites
Synthesis of Cobalt-Erbium nano-ferrites with formulation CoErxFe2-xO4 (x = 0, 0.005, 0.010, 0.015, 0.020, 0.025, and 0.030) using technique of citrate-gel auto-combustion was done. Characterization of prepared powders was done by using XRD, EDAX, FESEM, AFM and FTIR Spectroscopy, DC resistivity properties respectively. XRD Rietveld Analysis, SEM, TEM and EDAX analysis were taken up in studying spectral, structural, magnetic and electrical properties. XRD pattern of CEF nano particles confirm single phase cubic spinal structure. The structural variables given by lattice constant (a), lattice volume (v), average crystallite size (D) and X-ray density(dx), Bulk density (d), porosity (p), percentage of pore space (P%), surface area (s), strain (ε), dislocation density (δ), along with ionic radii, bond length and hoping length were calculated. SEM and TEM results reveal homogeneous nature of particles accompanied by clusters having no impurity pickup. TEM analysis gives information about particle size of nanocrystalline ferrite while EDAX analysis confirm elemental composition. Emergence of two arch shaped frequency bands (ν1 and ν2) that represent vibrations at tetrahedral site (A) and octahedral site(B) was indicated by spectra of FTIR. The samples electrical resistivity (DC) was measured between 30°C -600°C with Two probe method. XRD Rietveld analysis confirm crystallite size lying between 20.84 nm–14.40 nm while SEM analysis indicate formation of agglomerates and TEM analysis indicate particle size ranging between 24 nm–16 nm. DC Electrical measurements indicate continuous decrease in resistivity with increasing temperature while increasing doping decreases curie temperature. The Magnetic parameters such as Saturation magnetization (Ms), Remanent magnetization (Mr), Coercivity (Hc) and Squareness ratio (R = Mr/Ms), Magnetic moment (nB) were altered by doping of Er+3 content in the increasing order (x = 0.00 to 0.030). The increasing erbium content decreases magnetization thus converting the sample into soft magnetic material. Observations indicated strong dependence of magnetic properties on Erbium substitution and coercivity varies in accordance with anisotropy constant. Due to the presence of magnetic dipole Erbium substituted cobalt ferrites can be used in electromagnetic applications. The present study investigates the effect of different compositions of Er3+ replaced for Fe on structural properties and electrical resistivity of cobalt ferrites.
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