扫描透射电子显微镜
氦
液氦
化学
电子
表征(材料科学)
噪音(视频)
原子物理学
材料科学
纳米技术
透射电子显微镜
物理
核物理学
人工智能
计算机科学
图像(数学)
作者
Junsik Mun,Daniel Potemkin,Houk Jang,S.J. Park,Stephen Mick,C. Petrović,Sang‐Wook Cheong,Myung‐Geun Han,Yimei Zhu
标识
DOI:10.1016/j.ultramic.2024.114039
摘要
Fundamental quantum phenomena in condensed matter, ranging from correlated electron systems to quantum information processors, manifest their emergent characteristics and behaviors predominantly at low temperatures. This necessitates the use of liquid helium (LHe) cooling for experimental observation. Atomic resolution scanning transmission electron microscopy combined with LHe cooling (cryo-STEM) provides a powerful characterization technique to probe local atomic structural modulations and their coupling with charge, spin and orbital degrees-of-freedom in quantum materials. However, achieving atomic resolution in cryo-STEM is exceptionally challenging, primarily due to sample drifts arising from temperature changes and noises associated with LHe bubbling, turbulent gas flow, etc. In this work, we demonstrate atomic resolution cryo-STEM imaging at LHe temperatures using a commercial side-entry LHe cooling holder. Firstly, we examine STEM imaging performance as a function of He gas flow rate, identifying two primary noise sources: He-gas pulsing and He-gas bubbling. Secondly, we propose two strategies to achieve low noise conditions for atomic resolution STEM imaging: either by temporarily suppressing He gas flow rate using the needle valve or by acquiring images during the natural warming process. Lastly, we show the applications of image acquisition methods and image processing techniques in investigating structural phase transitions in Cr
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