A two-step strategy for production of spherical non-aggregated multi-component particles by suspension-fed spray flame

IF 5.3 2区 工程技术 Q2 ENERGY & FUELS Proceedings of the Combustion Institute Pub Date : 2024-06-28 DOI:10.1016/j.proci.2024.105350
Shuting Lei, Yiyang Zhang, Zhu Fang, Tianyi Wu, Xing Jin, Shuiqing Li
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Abstract

For applications in optics, energy storage, and semiconductors etc., spherical non-aggregated particles are desired for better flowability, molding capability and homogeneous densification. Spray flame synthesis has attracted widespread attention with its excellent ability for atomic-level mixing/doping and good potential for scale-up production. However, spray flame synthesis usually produces aggregates due to the known collision-coalescence growth. In this paper, we propose a two-step strategy of suspension-fed spray-flame synthesis. The first step involves the synthesis of aggregated nanoparticles, followed by a second step where these aggregates are reconstructed into spherical non-aggregated particles while retaining the advantage of atomic-level homogeneous mixing. It is found that for aggregated YO nanoparticles, the critical point for reconstructing into spherical particles occurs when the flame temperature exceeds the melting point. The spherical particle size increases with the solid concentration of the suspension by a power of about 0.28. Assuming that droplets do not undergo micro-explosions and instead follow a one droplet to one particle route results in an overestimation of particle size by a factor of 6 to 8. This discrepancy suggests that micro-explosions may play certain role in the new suspension-fed flame synthesis, and largely reduces the final particle size. Furthermore, the AlO-YO and MgO-YO particles are selected for the multicomponent suspension-fed synthesis, representing the miscible and immiscible systems, respectively. The results show that for the AlO-YO system, uniformly mixed spherical non-aggregated particles are obtained. For the MgO-YO system, both composite spherical particles with pinning structure and MgO nanoparticles are identified, indicating that for obtaining spherical multi-component non-aggregated particles, the flame temperature needs to be higher than not only the eutectic component's melting point but also any single component's melting point. Overall, suspension-fed spray flame synthesis opens up a new pathway for the low-cost industrial-scale production of spherical non-aggregated multi-component particles.
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利用悬浮喷射火焰生产球形非聚集多组分颗粒的两步战略
在光学、储能和半导体等领域的应用中,需要球形非聚集颗粒以获得更好的流动性、成型能力和均匀致密性。喷焰合成法因其卓越的原子级混合/掺杂能力和良好的规模化生产潜力而受到广泛关注。然而,由于已知的碰撞凝聚生长,喷焰合成通常会产生聚集体。在本文中,我们提出了一种分两步进行的悬浮喷射火焰合成策略。第一步是合成聚集纳米粒子,第二步是将这些聚集体重构为球形非聚集粒子,同时保留原子级均匀混合的优势。研究发现,对于聚集的 YO 纳米粒子,当火焰温度超过熔点时,就会出现重构为球形粒子的临界点。球形颗粒尺寸随悬浮液固体浓度的增加而增加,增加的幂约为 0.28。假设液滴不发生微爆炸,而是按照一个液滴到一个颗粒的路线进行,则颗粒尺寸会被高估 6 到 8 倍。这一差异表明,微爆可能在新的悬浮焰合成中发挥了一定的作用,并在很大程度上减小了最终的粒度。此外,还选择了 AlO-YO 和 MgO-YO 颗粒进行多组分悬浮进给合成,分别代表混溶体系和不混溶体系。结果表明,对于 AlO-YO 体系,可获得混合均匀的球形非聚集颗粒。对于 MgO-YO 体系,既能得到具有针状结构的复合球形颗粒,也能得到 MgO 纳米颗粒,这表明要获得球形多组分非聚集颗粒,火焰温度不仅要高于共晶组分的熔点,也要高于任何单一组分的熔点。总之,悬浮喷射火焰合成为低成本工业化生产球形非聚集多组分颗粒开辟了一条新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Proceedings of the Combustion Institute
Proceedings of the Combustion Institute 工程技术-工程:化工
CiteScore
7.00
自引率
0.00%
发文量
420
审稿时长
3.0 months
期刊介绍: The Proceedings of the Combustion Institute contains forefront contributions in fundamentals and applications of combustion science. For more than 50 years, the Combustion Institute has served as the peak international society for dissemination of scientific and technical research in the combustion field. In addition to author submissions, the Proceedings of the Combustion Institute includes the Institute''s prestigious invited strategic and topical reviews that represent indispensable resources for emergent research in the field. All papers are subjected to rigorous peer review. Research papers and invited topical reviews; Reaction Kinetics; Soot, PAH, and other large molecules; Diagnostics; Laminar Flames; Turbulent Flames; Heterogeneous Combustion; Spray and Droplet Combustion; Detonations, Explosions & Supersonic Combustion; Fire Research; Stationary Combustion Systems; IC Engine and Gas Turbine Combustion; New Technology Concepts The electronic version of Proceedings of the Combustion Institute contains supplemental material such as reaction mechanisms, illustrating movies, and other data.
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