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Role of carboxylate ion and metal oxidation state on the morphology and magnetic properties of nanostructured metal carboxylates and their decomposition products

机译:羧酸根离子和金属氧化态对纳米结构金属羧酸根及其分解产物的形态和磁性的影响

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摘要

Sub-micron rods and spheres of cobalt succinate sesquihydrate and iron succinate trihydrate/udpentahydrate respectively have been synthesized by the reverse micellar route. These precursors are an excellent source for the synthesis of metal and metal oxide nanoparticles. Cubes of (edge length ~ 150 nm) Fe3O4 and elongated particles of Fe2O3 (~ diameter of 200 nm) were obtained. The role of oxidation state of the metal ion in controlling the morphology of the nanostructured dicarboxylates has been investigated. Rods with shorter length were obtained when longer chain dicarboxylate was used as ligand.Heating in nitrogen atmosphere also provided pure Co and α-Fe nanoparticles. The Fe nanoparticles show nearly 100% superparamagnetism. Temperature-dependent magnetic studies show a Morin-like transition for Fe2O3 nanoparticles at 223 K and the Verwey transition at 115 K for Fe3O4 nanoparticles. Co3O4 nanoparticles showed antiferromagnetic ordering at 20 K.
机译:琥珀酸倍半水合琥珀酸钴和琥珀酸三水合/二水合琥珀酸亚微米棒和球已通过反胶束途径合成。这些前体是合成金属和金属氧化物纳米粒子的极佳来源。获得了(边长约150 nm)Fe3O4的立方体和长形的Fe2O3颗粒(约200 nm的直径)。研究了金属离子的氧化态在控制纳米结构二羧酸盐形态方面的作用。当使用较长链的二羧酸盐作为配体时,可获得较短的棒。在氮气氛中加热还提供了纯Co和α-Fe纳米粒子。 Fe纳米粒子显示出近100%的超顺磁性。随温度变化的磁性研究表明,Fe3O4纳米粒子在223 K时发生Fe2O3纳米粒子的莫林跃迁,而115 K时发生Fe3O4纳米粒子的Verwey跃迁。 Co3O4纳米粒子在20 K下显示反铁磁有序。

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