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High temperature strategy for oxide nanoparticle synthesis

机译:氧化物纳米粒子合成的高温策略

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摘要

Compared with noble metals and quantum dots, dielectric complex oxide nanoparticles are significantly less popular due to their high crystallization temperature, making difficult their synthesis in the 10-100 nm range for which surface effects are reduced. We report here an original process permitting thermal annealing of complex oxide nanoparticles at high temperature without aggregation and growth. Thus, after thermal treatment, these annealed particles can be dispersed in water, leading to concentrated aqueous colloidal dispersions containing isolated highly crystalline particles. This contrasts with usual colloidal techniques for which the production of particles in the 10-100 nm range generally leads to poorly crystallized particles, especially for multicomponent oxides. From two examples, we show some possibilities offered by this type of process. This concerns the synthesis of lanthanide-doped oxide nanoparticles exhibiting a bulk behavior for their luminescence properties and the control of the composition in nitrogen-doped titanium oxide particles without sintering and size change.
机译:与贵金属和量子点相比,介电复合氧化物纳米粒子由于其较高的结晶温度而明显不那么受欢迎,从而使其难以在10-100 nm范围内合成,从而降低了表面效应。我们在这里报告了一种原始方法,该方法允许复杂氧化物纳米粒子在高温下进行热退火而不会发生聚集和生长。因此,在热处理之后,这些退火的颗粒可以分散在水中,从而导致含有分离的高结晶颗粒的浓缩的胶体水分散体。这与常规的胶体技术形成对比,在常规的胶体技术中,产生10-100 nm范围的颗粒通常会导致结晶度差,特别是对于多组分氧化物而言。从两个示例中,我们展示了这种过程提供的一些可能性。这涉及掺杂镧系元素的氧化物纳米颗粒的合成,所述镧系元素的氧化物的发光性能表现出本体行为,并且控制掺杂氮元素的氧化钛颗粒中的组成而不发生烧结和尺寸变化。

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