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用于高密度微球的超颗粒工程:具有可调节微机械性能的氧化钇稳定氧化锆

Supraparticle Engineering for Highly Dense Microspheres: Yttria-Stabilized Zirconia with Adjustable Micromechanical Properties.

作者信息

Kim Young-Rok, Lee Tae Won, Park Seonhwa, Jang Jongmoon, Ahn Cheol-Woo, Choi Jong-Jin, Hahn Byung-Dong, Choi Joon-Hwan, Yoon Woon-Ha, Bae Sung-Hwan, Min Yuho

机构信息

Department of Functional Ceramics, Ceramic Materials Division, Korea Institute of Materials Science (KIMS), Changwon, Gyeongnam, Korea, 51508.

Department of Mechatronics Engineering, Kyungnam University, Gyeongnam, Korea, 51767.

出版信息

ACS Nano. 2021 Jun 22;15(6):10264-10274. doi: 10.1021/acsnano.1c02408. Epub 2021 May 26.

Abstract

Various supraparticles have been extensively studied owing to their excellent catalytic properties that are attributed to their inherent porous structure; however, their mechanical properties have not garnered attention owing to their less dense structure. We demonstrate a rational approach for fabricating assembled supraparticles and, subsequently, highly dense microspheres. In addition, 3 mol % yttria-stabilized zirconia (3YSZ) and alumina particles were selected as building blocks and assembled into higher-order architectures using a droplet-based template method (spray drying) for validation with proof-of-concept. Moreover, structural features such as density, size, sphericity, and morphology of supraparticles were controlled by adjusting the competing kinetics occurring between the assembly of building blocks and evaporation of the solvent in the droplets. The preparatory aqueous suspension and process parameters were optimized as well. A detailed understanding of the formation mechanism facilitated the yield of tailor-made supraparticles and, thereafter, highly dense microspheres (approximate relative density = 99%) with excellent sphericity (>98%) heat treatment. The microspheres displayed highest hardness (26.77 GPa) and superior elastic modulus (210.19 GPa) compared with the mechanical properties of the 3YSZ samples reported to date. Ultimately, the proposed supraparticle engineering provided insight for controlling the structural features and resultant micromechanical properties, which widely extends the applicability of supraparticle-based functional materials for practical purposes that require materials with high density and excellent mechanical properties.

摘要

由于其固有的多孔结构所赋予的优异催化性能,各种超粒子已得到广泛研究;然而,由于其结构密度较低,它们的机械性能尚未受到关注。我们展示了一种制备组装超粒子进而制备高密度微球的合理方法。此外,选择3摩尔%的氧化钇稳定氧化锆(3YSZ)和氧化铝颗粒作为构建单元,并使用基于液滴的模板法(喷雾干燥)将其组装成高阶结构,以进行概念验证。此外,通过调节构建单元组装与液滴中溶剂蒸发之间发生的竞争动力学,来控制超粒子的密度、尺寸、球形度和形态等结构特征。还优化了制备用水性悬浮液和工艺参数。对形成机制的详细了解有助于制备定制的超粒子,进而制备出具有优异球形度(>98%)且经过热处理的高密度微球(近似相对密度 = 99%)。与迄今报道的3YSZ样品的机械性能相比,这些微球显示出最高硬度(26.77 GPa)和优异的弹性模量(210.19 GPa)。最终,所提出的超粒子工程为控制结构特征和由此产生的微观机械性能提供了思路,这广泛扩展了基于超粒子的功能材料在需要高密度和优异机械性能材料的实际应用中的适用性。

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