Abstract

The present study highlights the effect of metal precursor types (SO42¯, Cl¯, and NO3¯), their concentration, and the influence of ionic strength of reaction environment on the morphology, surface, and magnetic properties of CoFe2O4 particles. The magnetic nanoparticles were obtained by chemical coprecipitation in alkaline medium at increasing metal concentration in the range of 0.0425 mol·dm-3 to 0.17 mol·dm-3 and calcination temperature from 400°C to 800°C. It was found that the chemistry of precursors can be directly correlated with magnetic properties. The CoFe2O4 particles from metal sulphate precursors showed the highest saturation magnetization and the lowest coercivity. The adjustment of ionic strength in the range of 1.25–5 M was achieved by adding an appropriate quantity of metal sulphates into aqueous solutions at a constant pH or by adding an appropriate quantity of NaClO5 under similar conditions. The average hydrodynamic size of CoFe2O4 increased from 46 nm to 54 nm with increasing metal concentration and ionic strength. An explanation of magnetic properties, caused by ionic strength and metal concentration, is given based mainly on the reduction in repulsive forces at the particle interface and compensation of the double electric layer in the presence of anions. The observed coercivity was lower for the particles obtained in solutions with the highest ionic strength, whereas the concentration of metals and calcination temperature affected the saturation magnetization and morphology of the obtained cobalt ferrite particles.

Highlights

  • Spinel ferrites are interesting dielectric materials due to their magnetic properties and high chemical and thermal stability

  • The obtained results indicate a significant influence of a precursor type, its concentration, and ionic strength of the solution on the morphology and magnetic properties of cobalt ferrite particles prepared by the hydrothermal method

  • At the same ionic strength I = 5 M, the lower concentration of metal salts resulted in a higher BET surface area and smaller crystallite size of cobalt ferrite particles

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Summary

Introduction

Spinel ferrites are interesting dielectric materials due to their magnetic properties and high chemical and thermal stability. Journal of Nanomaterials ferrite nanoparticles has been reported The understanding of such relationships is an important requirement to attain the capability of tailoring the properties of the cobalt ferrite-based magnetic materials. In this regard, the present study focuses on the magnetic properties of cobalt ferrite obtained in the hydrothermal process at calcination temperatures in the range of 400-800°C using varying salt type precursors. The effect of metal precursors (sulphates, chlorides, and nitrates) and their concentration used for the synthesis of cobalt ferrite NPs, the influence of ionic strength of reaction environment, and the calcination temperature on size, structural, and magnetic properties of CoFe2O4 particles were studied

Experimental
Results and Discussion
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