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Size-controlled high magnetization CoFe_2O_4 nanospheres and nanocubes using rapid one-pot sonochemical technique

机译:快速一锅超声化学技术控制尺寸的高磁化CoFe_2O_4纳米球和纳米立方体

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摘要

Highly crystalline single phase spherical and monodisperse cobalt feirite (CoFe_2O_4) nanoparticles (NPs) with uniform shape and size distribution have been synthesized by one pot-rapid sonochemical method. The effect of different solvents, such as aqueous, alcoholic, and a mix of water/ethanol in 1:1 volume ratio on the shape, size, and crystalline structure of CoFe_2O_4 NPs were studied using X-ray diffraction, transmission electron microscopy, energy dispersive spectroscopy and Fourier transform infrared spectroscopy. The size of CoFe_2O_4 nanpparticle was controlled in the range from 20 to 110 nm based on the solvent medium used in the synthesis process. Furthermore, the evolution from spherical to cubic morphology of cobalt ferrite NPs is achieved by simply changing the solvent medium from aqueous to alcoholic medium. The magnetic properties of all the synthesized CoFe_2O_4 NPs were studied by vibrating sample magnetometer (VSM) at room temperature. The magnetization value was found to be particle size dependent, and high magnetization (Ms) of 92.5 emu/g was obtained for the CoFe_2O_4 NPs sample synthesized in a mixed solution of water and ethanol. A possible reaction mechanism for the formation of cobalt ferrite NPs by the sonochemical technique was discussed. The facile method adopted in our study appears to be a promising route for synthesis of highly crystalline nanoparticles within short times and without the need for using any calcination process.
机译:通过一种快速化学法合成了具有均匀形状和尺寸分布的高结晶度单相球形和单分散的钴铁矿(CoFe_2O_4)纳米颗粒(NPs)。利用X射线衍射,透射电子显微镜,能量研究了CoFe_2O_4纳米颗粒的形状,尺寸和晶体结构,研究了不同溶剂(如水性溶剂,乙醇以及水/乙醇以1:1体积比混合)的形状,大小和晶体结构。色散光谱和傅里叶变换红外光谱。基于合成过程中使用的溶剂介质,将CoFe_2O_4纳米颗粒的尺寸控制在20至110nm的范围内。此外,只需简单地将溶剂介质从水性介质更改为酒精介质,就可以实现钴铁氧体NPs从球形到立方形的演化。通过在室温下振动样​​品磁力计(VSM)研究了所有合成的CoFe_2O_4 NP的磁性。发现磁化值取决于粒度,并且在水和乙醇的混合溶液中合成的CoFe_2O_4 NPs样品的磁化强度(Ms)为92.5 emu / g。讨论了通过声化学技术形成钴铁氧体NP的可能反应机理。在我们的研究中采用的简便方法似乎是在短时间内合成高度结晶纳米颗粒的有前途的途径,而无需使用任何煅烧过程。

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