Development of tomography–transmission electron microscope (TEM) specimen holder stable under acoustic disturbances

IF 1.4 Q3 ACOUSTICS BUILDING ACOUSTICS Pub Date : 2021-01-26 DOI:10.1177/1351010X21989494
K. Bataineh
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Abstract

This paper focuses on the development of tomography—transmission electron microscope (TEM) specimen holder stable under environment effect that allows atomic resolution. The successful holder must be dynamically stable for accuracy and image processes to obtain an atomic resolution, with a minimum controllable drift of the sample position. Different strategies to reduce the effect of acoustic disturbances are investigated. The approach to the problem has been two-fold, numerical and experimental. The effect of mechanical and acoustic noise is analyzed. Finite element results match very well previous experimental results and observations. Theoretical analysis showed that air pressure fluctuations have a significant impact on microscopes with side entry goniometers, especially when the exciting frequency matches a vibration mode of the sample holder. For example, finite element analysis (FEA) predicts that the tip deflections are 4.5 Å and 0.09 Å under air pressure excitation of 64 and 40 dB respectively. Utilizing a sandwiched constrained damping shell layer made of viscoelastic material that partially covers the inner part of TEM holder body successfully decreased the vibration. Finite element simulations predict that a shell layer of viscoelastic material with a thickness equal to the 1/10 of the body holder diameter reduces the vibrations by 30%. The viscoelastic layer shell thickness, loss factor, and elastic modulus have a strong effect on the damping behavior and the optimal combination should be determined.
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声干扰下稳定的层析透射电子显微镜(TEM)试样架的研制
本文主要研究了在环境作用下稳定的、允许原子分辨率的层析-透射电子显微镜(TEM)样品架的研制。成功的支架必须是动态稳定的精度和图像处理,以获得原子分辨率,具有最小的可控漂移的样品位置。研究了减少声干扰影响的不同策略。解决这个问题的方法有两方面:数值和实验。分析了机械噪声和声学噪声的影响。有限元计算结果与以往的实验结果和观测结果吻合得很好。理论分析表明,气压波动对侧入式测角仪显微镜有显著的影响,特别是当激励频率与样品架的振动模式相匹配时。例如,有限元分析(FEA)预测,在64和40 dB的气压激励下,尖端挠度分别为4.5 Å和0.09 Å。利用粘弹性材料制成的夹层约束阻尼壳层部分覆盖TEM支架内部,成功地降低了振动。有限元模拟预测,厚度为支架直径1/10的粘弹性材料壳层可减少30%的振动。粘弹性层壳厚度、损失因子和弹性模量对阻尼性能有较大影响,应确定最优组合。
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来源期刊
BUILDING ACOUSTICS
BUILDING ACOUSTICS ACOUSTICS-
CiteScore
4.10
自引率
11.80%
发文量
22
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