环境扫描透射电子显微镜中电子束对Cu纳米粒子氧化的增强和抑制

IF 4.8 Q2 NANOSCIENCE & NANOTECHNOLOGY ACS Nanoscience Au Pub Date : 2023-08-01 DOI:10.1021/acsnanoscienceau.3c00018
Azin Ziashahabi, Anna Elsukova, Sara Nilsson, Marco Beleggia, Peter Stanley Jørgensen, Christoph Langhammer and Shima Kadkhodazadeh*, 
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引用次数: 1

摘要

在环境扫描透射电子显微镜(ESTEM)下研究了高能电子辐照对铜纳米粒子氧化的影响。在100-200℃的温度范围内,将半球形颗粒在3mbar的O2中氧化。系统以亚纳米空间分辨率原位记录了颗粒的演化过程。氧化包括纳米颗粒上的外层和内部氧化壳的形成,分别是由铜和氧同时扩散到纳米颗粒内外引起的。我们的研究结果表明,与没有暴露于电子束的氧化颗粒相比,电子束积极地影响反应,并且总体上加速了纳米颗粒的氧化。然而,这种电子束辅助氧化加速的程度在较高温度下减弱。此外,我们观察到,虽然通过Cu+阳离子向外扩散的氧化增强,但电子束似乎阻碍了通过O2 -阴离子向内扩散的氧化。研究结果表明,高能电子对Cu纳米颗粒的电化学氧化的影响主要与气体环境的动能传递、充电和电离有关,并且电子束可以提高和抑制反应速率。
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Electron Beam Induced Enhancement and Suppression of Oxidation in Cu Nanoparticles in Environmental Scanning Transmission Electron Microscopy

We have investigated the effects of high-energy electron irradiation on the oxidation of copper nanoparticles in environmental scanning transmission electron microscopy (ESTEM). The hemispherically shaped particles were oxidized in 3 mbar of O2 in a temperature range 100–200 °C. The evolution of the particles was recorded with sub-nanometer spatial resolution in situ in ESTEM. The oxidation encompasses the formation of outer and inner oxide shells on the nanoparticles, arising from the concurrent diffusion of copper and oxygen out of and into the nanoparticles, respectively. Our results reveal that the electron beam actively influences the reaction and overall accelerates the oxidation of the nanoparticles when compared to particles oxidized without exposure to the electron beam. However, the extent of this electron beam-assisted acceleration of oxidation diminishes at higher temperatures. Moreover, we observe that while oxidation through the outward diffusion of Cu+ cations is enhanced, the electron beam appears to hinder oxidation through the inward diffusion of O2– anions. Our results suggest that the impact of the high-energy electrons in ESTEM oxidation of Cu nanoparticles is mostly related to kinetic energy transfer, charging, and ionization of the gas environment, and the beam can both enhance and suppress reaction rates.

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来源期刊
ACS Nanoscience Au
ACS Nanoscience Au 材料科学、纳米科学-
CiteScore
4.20
自引率
0.00%
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0
期刊介绍: ACS Nanoscience Au is an open access journal that publishes original fundamental and applied research on nanoscience and nanotechnology research at the interfaces of chemistry biology medicine materials science physics and engineering.The journal publishes short letters comprehensive articles reviews and perspectives on all aspects of nanoscience and nanotechnology:synthesis assembly characterization theory modeling and simulation of nanostructures nanomaterials and nanoscale devicesdesign fabrication and applications of organic inorganic polymer hybrid and biological nanostructuresexperimental and theoretical studies of nanoscale chemical physical and biological phenomenamethods and tools for nanoscience and nanotechnologyself- and directed-assemblyzero- one- and two-dimensional materialsnanostructures and nano-engineered devices with advanced performancenanobiotechnologynanomedicine and nanotoxicologyACS Nanoscience Au also publishes original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials engineering physics bioscience and chemistry into important applications of nanomaterials.
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