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Protective Effect of Polyoxometalates in {Mo132}/Maghemite Binary Superlattices Under Annealing

机译:退火条件下多金属氧酸盐对{Mo132} / Maghemite二元超晶格的保护作用

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The binary assembly DDA-{Mo132} / OA-γ-Fe2O3 (DDA=didodecyldimethylammonium, {Mo132}=[Mo132O372(CH3COO)30(H2O)72]42-, OA = oleic acid) constitutes one of the two examples in the literature of binary superlattices made of a mixing of nanocrystals and oxo-clusters. In a precedent work, we reported in details the preparation of such magnetic binary systems and studied the effect of the nature of the polyoxometalates (POMs) on the magnetic properties. In the present paper, we study the stability of this model binary assembly under heating at various temperatures. Indeed, especially if magnetic and/or transport properties are targeted, an annealing can be essential to change the phase of the nanocrystals in a more magnetic one and/or to desorb the organic capping of the nano-objects that can constitute an obstacle to the electronic communication between the nano-objects. The binary assembly showed a good stability at temperatures until around 400°C under vacuum thanks to the presence of the POMs that permits to avoid the aggregation of the nanocrystals as well as preserve their periodical arrangement. On the contrary, an assembly made of pure γ-Fe2O3 nanocrystals displays a clear aggregation of the nano-objects from 370°C, as attested by transmission and scanning electronic microscopies and confirmed by magnetic measurements. The stability of such POMsanocrystals assemblies opens the way to (i) the elaboration of new binary assemblies from POMs and numerous kinds of nanocrystals with a good control on the magnetic properties and to (ii) the investigation of new physical properties as exchange coupling, or magneto-transport in such systems.
机译:二元组装体DDA- {Mo132} /OA-γ-Fe2O3(DDA =十二烷基二甲基铵,{Mo132} = [Mo132O372(CH3COO)30(H2O)72] 42-,OA =油酸)构成以下两个实例之一纳米晶和氧代团簇混合制成的二元超晶格的文献。在先前的工作中,我们详细报告了此类磁性二元体系的制备,并研究了多金属氧酸盐(POM)的性质对磁性的影响。在本文中,我们研究了该模型二元组件在各种温度下加热的稳定性。确实,尤其是在针对磁性和/或传输性质的情况下,退火对于改变磁性更强的纳米晶体的相和/或解吸可能对纳米物体构成障碍的有机覆盖物至关重要。纳米物体之间的电子通信。由于存在POM,二元组装在真空中直至400°C的温度下都显示出良好的稳定性,这是因为POM可以避免纳米晶体的聚集并保持其周期性排列。相反,由纯γ-Fe2O3纳米晶体制成的组件显示出370°C时纳米物体的清晰聚集,这是通过透射和扫描电子显微镜检查以及磁测量结果证实的。此类POM /纳米晶体组件的稳定性为(i)从POM和许多种类的纳米晶体制备新的二元组件并很好地控制磁性能开辟了道路,并且(ii)研究了作为交换耦合的新物理属性,或此类系统中的磁传输。

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