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Converting ceria polyhedral nanoparticles into single-crystal nanospheres

机译:将二氧化铈多面体纳米颗粒转化为单晶纳米球

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Ceria nanoparticles are one of the key abrasive materials for chemical-mechanical planarization of advanced integrated circuits. However, ceria nanoparticles synthesized by existing techniques are irregularly faceted, and they scratch the silicon wafers and increase defect concentrations. We developed an approach for large-scale synthesis of single-crystal ceria nanospheres that can reduce the polishing defects by 80% and increase the silica removal rate by 50%, facilitating precise and reliable mass-manufacturing of chips for nanoelectronics. We doped the ceria system with titanium, using flame temperatures that facilitate crystallization of the ceria yet retain the titania in a molten state. In conjunction with molecular dynamics simulation, we show that under these conditions, the inner ceria core evolves in a single-crystal spherical shape without faceting, because throughout the crystallization it is completely encapsulated by a molten 1- to 2-nanometer shell of titania that, in liquid state, minimizes the surface energy. The principle demonstrated here could be applied to other oxide systems.
机译:二氧化铈纳米颗粒是用于高级集成电路化学机械平面化的关键磨料之一。然而,通过现有技术合成的二氧化铈纳米颗粒具有不规则的刻面,并且它们划伤硅晶片并增加了缺陷浓度。我们开发了一种大规模合成单晶二氧化铈纳米球的方法,该方法可以将抛光缺陷减少80%,将二氧化硅去除率提高50%,从而有助于精确,可靠地批量生产用于纳米电子学的芯片。我们使用促进钛白粉晶化的火焰温度同时将二氧化钛保持在熔融状态的火焰温度对钛掺杂了钛白粉系统。结合分子动力学模拟,我们表明在这些条件下,内部二氧化铈核以单晶球形演化而没有刻面,因为在整个结晶过程中,它完全被熔融的1至2纳米二氧化钛壳完全包封,处于液态时,可使表面能最小化。这里展示的原理可以应用于其他氧化物体系。

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