位错
材料科学
溶解
衍射
透射电子显微镜
相干衍射成像
布拉格定律
Crystal(编程语言)
方解石
衍射形貌
结晶学
化学物理
显微镜
X射线晶体学
光学
纳米技术
矿物学
化学
物理
复合材料
计算机科学
傅里叶变换
物理化学
程序设计语言
量子力学
相位恢复
作者
Jesse N. Clark,Johannes Ihli,Anna S. Schenk,Yi‐Yeoun Kim,Alexander N. Kulak,James M. Campbell,G. Nisbet,Fiona C. Meldrum,Ian Robinson
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2015-06-01
卷期号:14 (8): 780-784
被引量:180
摘要
Atomic-level defects such as dislocations play key roles in determining the macroscopic properties of crystalline materials. Their effects range from increased chemical reactivity to enhanced mechanical properties. Dislocations have been widely studied using traditional techniques such as X-ray diffraction and optical imaging. Recent advances have enabled atomic force microscopy to study single dislocations in two dimensions, while transmission electron microscopy (TEM) can now visualize strain fields in three dimensions with near-atomic resolution. However, these techniques cannot offer three-dimensional imaging of the formation or movement of dislocations during dynamic processes. Here, we describe how Bragg coherent diffraction imaging (BCDI; refs 11, 12) can be used to visualize in three dimensions, the entire network of dislocations present within an individual calcite crystal during repeated growth and dissolution cycles. These investigations demonstrate the potential of BCDI for studying the mechanisms underlying the response of crystalline materials to external stimuli.
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