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首页> 外文期刊>Journal of Colloid and Interface Science >Solvents-dependent selective fabrication of face-centered cubic and hexagonal close-packed structured ruthenium nanoparticles during liquid-phase laser ablation
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Solvents-dependent selective fabrication of face-centered cubic and hexagonal close-packed structured ruthenium nanoparticles during liquid-phase laser ablation

机译:在液相激光烧蚀过程中依赖于置位的立方体和六边形紧密填充结构钌纳米颗粒的溶剂依赖性选择性制造

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摘要

Ruthenium nanoparticles (Ru NPs) with face-centered cubic (fcc) structure possess higher catalytic activity than that with hexagonal close-packed (hcp) structure. However, a high temperature above 1800 K is needed for the formation of the metastable fcc Ru phase. In this study, we present a tunable fabrication strategy of fcc and hcp Ru NPs by laser ablation of Ru target in solvents. In methanol, ethanol or acetone organic solvent, both fcc and hcp Ru NPs encapsulated in carbon layer could be obtained, while in deionized water only pure hcp Ru NPs formed. The extreme conditions, that is, the laser-target interaction induced high temperature and high-pressure plasma plume (4000-5000 K, 10-15 GPa) together with its subsequent quenching process, favored the formation of metastable fcc phase. Significantly, the graphite carbon layers sourced from the thermal decomposition of solvent molecules prevent the further evolution of metastable fcc phase into stable hcp phase. Clarification of the solvents and pulse energy effects promise the tunable fabrication of Ru NPs with desired crystallographic structure during laser ablation in liquids (LAL). (C) 2020 Elsevier Inc. All rights reserved.
机译:面心立方(fcc)结构的钌纳米颗粒(Ru NP)比六方密排(hcp)结构的钌纳米颗粒(Ru NP)具有更高的催化活性。然而,亚稳fcc钌相的形成需要高于1800 K的高温。在这项研究中,我们提出了一种在溶剂中激光烧蚀钌靶制备fcc和hcp钌纳米颗粒的可调谐策略。在甲醇、乙醇或丙酮有机溶剂中,fcc和hcp-Ru纳米颗粒都可以被包裹在碳层中,而在去离子水中,只有纯hcp-Ru纳米颗粒形成。极端条件下,即激光与靶相互作用产生的高温高压等离子体羽流(4000-5000k,10-15gpa)及其随后的淬火过程,有利于亚稳态fcc相的形成。值得注意的是,源于溶剂分子热分解的石墨碳层阻止了亚稳fcc相向稳定hcp相的进一步演化。澄清溶剂和脉冲能量效应有望在液体激光烧蚀(LAL)过程中可调谐地制备具有所需晶体结构的Ru NP。(C) 2020爱思唯尔公司版权所有。

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