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首页> 外文期刊>Journal of Applied Physics >Advanced nanoscale characterization of aluminum nanoparticles with modified surface morphology via atmospheric helium and carbon monoxide plasmas
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Advanced nanoscale characterization of aluminum nanoparticles with modified surface morphology via atmospheric helium and carbon monoxide plasmas

机译:大气氦气和一氧化碳等离子体,具有改性表面形态的铝纳米粒子的先进纳米级表征

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摘要

Aluminum nanoparticles (nAl) have the potential as energetic additives in explosive/propellant formulations. Scalable methodologies must be pursued to mitigate the inactive amorphous alumina shell surrounding the active aluminum (Al) core with modified surface morphology and chemistry for increased combustion effects. This paper explores the feasibility of making reactive core/shell nAl with thinned oxide shells and modified surface coatings via a two-step atmospheric plasma surface treatment process in a custom dielectric barrier discharge plasma reactor. The commercial nAl of nominal average size ~40-60 nm was first treated with helium (He) followed by He/carbon monoxide (CO) plasmas for different durations. The resultant samples were characterized via high-resolution transmission electron microscopy (HRTEM) and Fourier transform IR (FTIR) spectra. HRTEM images revealed sporadic patchy γ-alumina deposits on particle surfaces and in gaps among particles for all samples, suggesting the non-uniform plasma effects of the He/CO glow. Nanoscale chemical analyses via scanning transmission electron microscopy elemental mapping and x-ray energy dispersive spectroscopy were further performed. Although no carbon-associated structure appeared in electron energy loss spectroscopy (EELS) spectra, the presence of carbonaceous materials was confirmed as a thin dispersive layer evenly distributed on the nAl surface suggesting either its amorphous nature or is present at a level insufficient to generate satisfactory EELS spectra. The trend of intensity profiles for key elements acquired by drawing lines across a single particle on the elemental maps confirmed that carbonaceous materials only existed on the surface and they were most likely carboxylates that increased with increased He/CO treatment duration, as evident by FTIR results. This work demonstrated the success of atmospheric plasma-treated reactive nAl with comprehensively characterized surface features via advanced microscopy and spectroscopy.
机译:铝纳米粒子(NAL)具有爆炸/推进剂配方中的能量添加剂。必须追求可扩展的方法,以减轻活性铝(Al)核心的无活性非晶氧化铝壳,改性表面形态和化学以增加燃烧效应。本文探讨了通过在定制介电阻挡放电等离子体反应器中通过两步大气压等离子体表面处理过程制备反应性芯/壳NAL和改性表面涂层的可行性。首先用氦气(HE)处理名义平均大小〜40-60nm的商业NAL,然后是他/一氧化碳(CO)等离子体的不同持续时间。通过高分辨率透射电子显微镜(HRTEM)和傅里叶变换IR(FTIR)光谱表征所得的样品。 HRTEM图像揭示了颗粒表面上的散氏斑块γ-氧化铝沉积物,以及所有样品的颗粒之间的间隙中,表明他/ CO发光的不均匀等离子体效应。进一步进行纳米级化学分析通过扫描透射电子显微镜元素映射和X射线能量分散光谱。尽管在电子能量损失光谱(EELS)光谱中没有出现碳相关结构,但是含碳材料的存在被证实为均匀分布在NAL表面上的薄散分散层,表明其无定形性或存在于不足以产生令人满意的水平鳗鱼谱。通过在元素地图上绘制线绘制线的关键元素的强度分布的趋势证实,在表面上仅存在碳质材料,它们最有可能随着他/ CO治疗持续时间增加而增加的羧酸盐,如FTIR结果所示。这项工作证明了大气等离子体处理的活性NAL的成功,具有通过先进的显微镜和光谱学的全面表征表面特征。

著录项

  • 来源
    《Journal of Applied Physics》 |2021年第6期|063302.1-063302.13|共13页
  • 作者单位

    Lethality Division Weapons and Materials Research Directorate US Army Combat Capabilities Development Command-Army Research Laboratory Aberdeen Proving Ground Maryland 21005 USA;

    Centerfor Nanoscale Materials Argonne National Laboratory Lemont Illinois 60439 USA;

    Materials and Manufacturing Science Division Weapons and Materials Research Directorate US Army Combat Capabilities Development Command-Army Research Laboratory Aberdeen Proving Ground Maryland 21005 USA Survice Engineering Co. US Army Combat Capabilities Development Command-Army Research Laboratory Aberdeen Proving Ground Maryland 21005 USA;

    Lethality Division Weapons and Materials Research Directorate US Army Combat Capabilities Development Command-Army Research Laboratory Aberdeen Proving Ground Maryland 21005 USA;

    Centerfor Nanoscale Materials Argonne National Laboratory Lemont Illinois 60439 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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