Nanoscopic oxygen control of functional oxide nanoparticles by electro-chemical route at ambient temperature.

0 MATERIALS SCIENCE, MULTIDISCIPLINARY
Putul Malla Chowdhury, A K Raychaudhuri
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引用次数: 0

Abstract

La0.67Ca0.33MnOδ nanoparticles of approximate size ∼ 4 nm have been prepared by the chemical solution deposition method to investigate effect of oxygen stoichiometry in the nanoparticles without changing their sizes. Electrochemical oxidation method has been used to change the oxygen stoichiometry [Formula: see text] at room temperature, which unlike conventional methods to change oxygen stoichiometry by heating in controlled ambience, does not lead to any significant change in size. This has allowed us to investigate the effects of stoichiometry variations in the nanoparticles with no change in size. The unit cell volume, lattice constants and orthorhombic strains of the as prepared sample (with [Formula: see text] = 2.74) are changed by incorporation of oxygen by electrochemical oxidation which in turns affects the magnetic properties. In addition, oxidation leads to change in oxygen stoichiometry of the magnetically "dead" surface layer on the nanoparticles which also affects their magnetization and coercive field.

Abstract Image

在常温下通过电化学途径对功能氧化物纳米粒子进行纳米氧控制。
采用化学溶液沉积法制备了尺寸约为 4 纳米的 La0.67Ca0.33MnOδ 纳米粒子,以研究在不改变纳米粒子尺寸的情况下氧的化学计量的影响。我们采用电化学氧化法在室温下改变氧的化学计量[计算公式:见正文],与在受控环境下通过加热改变氧的化学计量的传统方法不同,这种方法不会导致尺寸发生任何显著变化。这使我们能够在不改变尺寸的情况下研究纳米粒子中的化学计量变化的影响。制备的样品([计算公式:见正文] = 2.74)的单位晶胞体积、晶格常数和正交应变会因电化学氧化中氧的加入而发生变化,进而影响磁性能。此外,氧化还导致纳米粒子磁性 "死 "表层的氧化学计量发生变化,这也会影响它们的磁化和矫顽力场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
0.70
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