Highly Reproducible Synthesis of Hollow Zirconia Particles via Atmospheric-Pressure Plasma Processing with Inkjet Droplets

IF 2.6 3区 物理与天体物理 Q3 ENGINEERING, CHEMICAL
Kaishu Nitta, Tomoki Sakai, Hitoshi Muneoka, Yoshiki Shimizu, Hiromichi Kobayashi, Kazuo Terashima, Tsuyohito Ito
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Abstract

Abstract Hollow particles have attracted considerable attention owing to their unique properties. In this study, hollow monoclinic zirconia particles were directly synthesized from inkjet droplets of a zirconyl hydroxychloride aqueous solution via atmospheric-pressure plasma processing. Hollow structures with craggy surfaces were obtained in the plasma at gas temperatures above 1000 K. The steep solvent evaporation rate induced by the localized high-energy reaction field of the atmospheric-pressure plasma may have induced solute condensation near the droplet surface and contributed to the formation of hollow particles. The average diameter of the synthesized particles was ~ 3 μm, while their size distribution was narrow (coefficient of variation: 0.06–0.10). The high reproducibility of the synthesized particles was attributed to the small variations in inkjet droplet size. The proposed method enables the rapid synthesis of hollow particles of various inorganic materials, while controlling their number and composition.

Abstract Image

喷墨液滴常压等离子体工艺合成高重复性空心氧化锆颗粒
空心颗粒以其独特的性能引起了人们的广泛关注。在本研究中,通过常压等离子体处理,从羟基氯化锆水溶液的喷墨液滴中直接合成了空心单斜氧化锆颗粒。在1000 K以上的气体温度下,等离子体中获得了表面凹凸不平的空心结构。大气压等离子体的局部高能反应场导致溶剂蒸发速度过快,可能导致液滴表面附近的溶质凝结,从而导致空心粒子的形成。合成的颗粒平均直径为~ 3 μm,粒径分布较窄(变异系数为0.06 ~ 0.10)。合成颗粒的高再现性归因于喷墨液滴尺寸的小变化。该方法能够快速合成各种无机材料的空心颗粒,同时控制它们的数量和组成。
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来源期刊
Plasma Chemistry and Plasma Processing
Plasma Chemistry and Plasma Processing 工程技术-工程:化工
CiteScore
5.90
自引率
8.30%
发文量
73
审稿时长
6-12 weeks
期刊介绍: Publishing original papers on fundamental and applied research in plasma chemistry and plasma processing, the scope of this journal includes processing plasmas ranging from non-thermal plasmas to thermal plasmas, and fundamental plasma studies as well as studies of specific plasma applications. Such applications include but are not limited to plasma catalysis, environmental processing including treatment of liquids and gases, biological applications of plasmas including plasma medicine and agriculture, surface modification and deposition, powder and nanostructure synthesis, energy applications including plasma combustion and reforming, resource recovery, coupling of plasmas and electrochemistry, and plasma etching. Studies of chemical kinetics in plasmas, and the interactions of plasmas with surfaces are also solicited. It is essential that submissions include substantial consideration of the role of the plasma, for example, the relevant plasma chemistry, plasma physics or plasma–surface interactions; manuscripts that consider solely the properties of materials or substances processed using a plasma are not within the journal’s scope.
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