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Bi-continuous pattern formation in thin films via solid-state interfacial dealloying studied by multimodal characterization

机译:通过多式联特征研究的固态界面易实验薄膜的双连续图案形成

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摘要

Bicontinuous-nanostructured materials with a three-dimensionally (3D) interconnected morphology offer unique properties and potential applications in catalysis, biomedical sensing and energy storage. The new approach of solid-state interfacial dealloying (SSID) opens a route for fabricating bi-continuous metal-metal composites and porous metals at nano-/meso-scales via a self-organizing process driven by minimizing the system's free energy. Integrating SSID and thin film processing fully can open up a wide range of technological opportunities in designing novel functional materials; to-date, no experimental evidence has shown that 3D bi-continuous films can be formed with SSID, owing to the complexity of the kinetic mechanisms in thin film geometry and at nano-scales, despite the simple processing strategy in SSID. Here, we demonstrate that a fully-interconnected 3D bi-continuous structure can be achieved by this new approach, thin-film-SSID, using Fe-Ni film dealloyed by Mg film. The formation of a Fe-MgxNi bi-continuous 3D nano-structure was visualized and characterized via a multi-scale, multi-modal approach, combining electron transmission microscopy with synchrotron X-ray fluorescence nano-tomography and absorption spectroscopy. Phenomena involved with structural formation are discussed. These include surface dewetting, nano-size void formation among metallic ligaments, and interaction with a substrate. This work sheds light on the mechanisms of the SSID process, and sets a path for manufacturing of thin-film materials for future nano-structured metallic materials.
机译:具有三维(3D)相互连接的形态的双连续纳米结构材料可在催化,生物医学传感和储能中提供独特的性质和潜在应用。通过通过最小化系统的自由能驱动的自组织过程,固态界面脱储型(SSID)的新方法通过通过自组织过程来开通用于在纳米/中间鳞片上制造双连续金属 - 金属复合材料和多孔金属。整合SSID和薄膜加工完全可以开辟设计新颖功能材料的广泛技术机会;迄今为止,由于SSID中的简单加工策略,因此没有实验证据表明,由于SSID中的加工策略简单,可以用SSID形成3D双连续膜。这里,我们证明,使用由Mg膜释放的Fe-Ni膜,通过这种新方法薄膜-SSID可以实现完全互连的3D双连续结构。通过多尺度,多模态方法形成Fe-MGXNI双连续3D纳米结构的形成,并将电子传输显微镜与同步X射线荧光纳米断层扫描和吸收光谱相结合的特征。讨论了结构性地层的现象。这些包括表面脱模,金属韧带之间的纳米尺寸空隙形成,以及与基材的相互作用。这项工作揭示了SSID过程的机制,并设定了一种用于制造用于未来纳米结构金属材料的薄膜材料的路径。

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  • 来源
    《Materials Horizons》 |2019年第10期|共12页
  • 作者单位

    SUNY Stony Brook Dept Mat Sci &

    Chem Engn Stony Brook NY 11794 USA;

    Brookhaven Natl Lab Ctr Funct Nanomat Upton NY 11973 USA;

    Brookhaven Natl Lab Natl Synchrotron Light Source 2 Upton NY 11973 USA;

    Brookhaven Natl Lab Ctr Funct Nanomat Upton NY 11973 USA;

    Brookhaven Natl Lab Ctr Funct Nanomat Upton NY 11973 USA;

    SUNY Stony Brook Dept Mat Sci &

    Chem Engn Stony Brook NY 11794 USA;

    Brookhaven Natl Lab Natl Synchrotron Light Source 2 Upton NY 11973 USA;

    Brookhaven Natl Lab Natl Synchrotron Light Source 2 Upton NY 11973 USA;

    Brookhaven Natl Lab Natl Synchrotron Light Source 2 Upton NY 11973 USA;

    NIST Mat Measurement Lab Gaithersburg MD 20899 USA;

    Brookhaven Natl Lab Ctr Funct Nanomat Upton NY 11973 USA;

    SUNY Stony Brook Dept Mat Sci &

    Chem Engn Stony Brook NY 11794 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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