Weighted Burgers Vector analysis of orientation fields from high-angular resolution electron backscatter diffraction

IF 2.1 3区 工程技术 Q2 MICROSCOPY Ultramicroscopy Pub Date : 2023-11-24 DOI:10.1016/j.ultramic.2023.113893
Joe Gardner , David Wallis , Lars N. Hansen , John Wheeler
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引用次数: 0

Abstract

The Weighted Burgers Vector (WBV) method can extract information about dislocation types and densities present in distorted crystalline materials from electron backscatter diffraction (EBSD) maps, using no assumptions about which slip systems might be present. Furthermore, high-angular resolution EBSD (HR-EBSD) uses a cross-correlation procedure to increase the angular precision of EBSD measurements by an order of magnitude compared to conventional EBSD. However, the WBV technique has not previously been applied to HR-EBSD data and therefore it remains unclear as to which low-angle substructures can be reliably characterised by WBV analysis of conventional EBSD data and which require additional HR-EBSD processing. To establish some practical examples that can be used to guide future data-acquisition strategies, we compare the output of the WBV method when applied to conventional EBSD data and HR-EBSD data collected from the most common minerals in Earth's lower crust (plagioclase feldspar) and upper mantle (olivine). The results demonstrate that HR-EBSD and WBV processing are complementary techniques. The increase in angular precision achieved with HR-EBSD processing allows low-angle (on the order of 0.1°) structures, which are obscured by noise in conventional EBSD data, to be analyzed quantitatively using the WBV method. Combining the WBV and HR-EBSD methods increases the precision of calculated WBV directions, which is essential when using information about active slip systems to infer likely deformation mechanisms from naturally deformed microstructures. This increase in precision is particularly important for low-symmetry crystals, such as plagioclase, that have a wide range of available slip systems that vary in relative activity with changing pressure, temperature and differential stress. Because WBV directions are calculated using no assumptions about which slip systems may be present, combining this technique with HR-EBSD to refine the precision of lattice orientation gradients is ideal for investigating complex natural materials with unknown deformation histories.

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来自高角分辨率电子反向散射衍射的定向场的加权布尔格斯矢量分析
加权布尔格斯矢量(WBV)方法可以从电子反向散射衍射(EBSD)图中提取扭曲晶体材料中存在的位错类型和密度信息,而无需假设可能存在的滑移系统。此外,高角分辨率 EBSD(HR-EBSD)使用交叉相关程序将 EBSD 测量的角度精度比传统 EBSD 提高了一个数量级。然而,WBV 技术之前尚未应用于 HR-EBSD 数据,因此,哪些低角度亚结构可以通过对传统 EBSD 数据的 WBV 分析进行可靠表征,哪些需要额外的 HR-EBSD 处理,目前仍不清楚。为了建立一些可用于指导未来数据采集策略的实际例子,我们比较了 WBV 方法应用于常规 EBSD 数据和从地壳下部(斜长石)和地幔上部(橄榄石)最常见矿物采集的 HR-EBSD 数据时的输出结果。结果表明,HR-EBSD 和 WBV 处理是互补的技术。通过 HR-EBSD 处理实现的角度精度的提高,使得在传统 EBSD 数据中被噪声掩盖的低角度(约 0.1°)结构可以通过 WBV 方法进行定量分析。结合 WBV 和 HR-EBSD 方法可以提高计算 WBV 方向的精度,这对于利用活动滑移系统信息推断自然变形微结构的可能变形机制至关重要。精度的提高对于低对称性晶体(如斜长石)尤为重要,因为这种晶体有多种可用的滑移系统,其相对活性随压力、温度和应力差的变化而变化。由于在计算 WBV 方向时不需要假设可能存在哪些滑移系统,因此将该技术与 HR-EBSD 结合使用以提高晶格取向梯度的精度,是研究具有未知变形历史的复杂天然材料的理想方法。
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来源期刊
Ultramicroscopy
Ultramicroscopy 工程技术-显微镜技术
CiteScore
4.60
自引率
13.60%
发文量
117
审稿时长
5.3 months
期刊介绍: Ultramicroscopy is an established journal that provides a forum for the publication of original research papers, invited reviews and rapid communications. The scope of Ultramicroscopy is to describe advances in instrumentation, methods and theory related to all modes of microscopical imaging, diffraction and spectroscopy in the life and physical sciences.
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