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Pore REconstruction and Segmentation (PORES) method for improved porosity quantification of nanoporous materials

机译:孔重构和分段(PORES)方法可改善纳米多孔材料的孔隙率定量

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Electron tomography is currently a versatile tool to investigate the connection between the structure and properties of nanomaterials. However, a quantitative interpretation of electron tomography results is still far from straightforward. Especially accurate quantification of pore space is hampered by artifacts introduced in all steps of the processing chain, i.e., acquisition, reconstruction, segmentation and quantification. Furthermore, most common approaches require subjective manual user input. in this paper, the PORES algorithm "POre REconstruction and Segmentation" is introduced; it is a tailor-macle, integral approach, for the reconstruction, segmentation, and quantification of porous nanornaterials. The PORES processing chain starts by calculating a reconstruction with a nanoporous-specific reconstruction algorithm: the Simultaneous Update of Pore Pixels by iterative REconstniction and Simple Segmentation algorithm (SUPPRESS). it classifies the interior region to the pores during reconstruction, while reconstructing the remaining region by reducing the error with respect to the acquired electron microscopy data The SUPPRESS reconstruction can be directly plugged into the remaining processing chain of the PORES algorithm, resulting in accurate individual pore quantification and full sample pore statistics. The proposed approach was extensively validated on both simulated and experimental data, indicating its ability to generate accurate statistics of nanoporous materials. (C) 2014 Elsevier B.V. All rights reserved.
机译:电子断层扫描目前是研究纳米材料结构与性能之间联系的通用工具。但是,对电子断层扫描结果的定量解释仍然远远不够简单。在加工链的所有步骤中引入的伪像(尤其是采集,重建,分割和定量)妨碍了对孔隙空间的精确定量。此外,大多数常见方法都需要主观手动用户输入。本文介绍了PORES算法“ POre的重构与分割”。它是定制的整体方法,用于多孔纳米颗粒的重建,分割和定量。 PORES处理链开始于使用特定于纳米孔的重建算法计算重建:通过迭代重建和简单分段算法(SUPPRESS)同时更新毛孔像素。它在重建过程中将内部区域分类为孔,同时通过减少与获取的电子显微镜数据有关的误差来重建剩余区域。SUPPRESS重建可以直接插入PORES算法的剩余处理链中,从而获得准确的单个孔定量和完整的样品孔统计。所提出的方法在模拟和实验数据上均得到了广泛验证,表明其能够生成纳米多孔材料的准确统计数据。 (C)2014 Elsevier B.V.保留所有权利。

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