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Formation and Morphological Evolution of Nanoporous Metals

Formation and Morphological Evolution of Nanoporous Metals
纳米多孔金属的形成和形态演化
批准号:
9975190
负责人:
Sean Corcoran
金额:
$26.59万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-07-01 至 2003-06-30

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中文摘要
翻译
一种生产纳米多孔金属的新方法是利用合金腐蚀进行选择性溶解。这一过程包括将一种元素从二元合金中电化学分离出来,以产生剩余元素的高度纳米孔金属。虽然这一过程在腐蚀界是众所周知的,但使用选择性溶解过程来生产高比表面积电极的潜在好处还没有被探索过。这项资助详细描述了在控制良好的环境条件下,金属合金在选择性溶解过程中产生的纳米孔的特征。这些条件旨在改变粗化和光整过程的相对速率。小角中子散射(SANS)表征了孔洞的完整三维形态。SANS实验在美国国家标准与技术研究所的冷中子研究设施中进行。扫描隧道显微镜(STM)表征了脱合金化过程中的表面形态变化。扫描隧道显微镜还可以量化更贵重元素在各种脱合金化环境中的表面扩散系数。研究计划包括:(1)量化在选择性溶解过程中形成的全三维孔径分布的原位时间演化作为电化学环境、外加电压和合金成分的函数;(2)量化多孔金属的粗化动力学作为温度、电化学环境和合金元素的熔点的函数;以及(3)使用STM测量选择性去除表面原子时形成的岛尺寸作为电化学环境的函数的演变。%本研究首次详细地描述了电化学环境对脱合金过程中孔洞形成的影响。这些研究数据为使用选择性溶解来制造用于安培传感器(特别是生物医学传感)的高比表面积电极提供了基础。纳米多孔金属在多种领域具有巨大的潜力,如用于电化学能量存储和转换的高比表面积电极,用于疾病诊断和治疗的生物医学传感器,以及在高度腐蚀性环境中的独特过滤应用。***
英文摘要
9975190CorcoranA novel method for the production of nanoporous metals is using alloy corrosion for selective dissolution. This process involves electrochemically parting one element from a binary alloy to produce a highly nanoporous metal of the remaining element. Although this process is well known within the corrosion community, the potential benefit of using the selective dissolution process to produce high surface-area electrodes has not been explored. This grant provides a detailed characterization of the nanoporosity created in metal alloys during selective dissolution under well-controlled environmental conditions. The conditions are designed to change the relative rates of the roughening and smoothing processes. Small angle neutron scattering (SANS) characterizes the full three-dimensional morphology of the porosity. The SANS experiments are carried out at the Cold Neutron Research Facility of the National Institute of Standards and Technology. Scanning tunneling microscopy (STM) characterizes the surface morphological changes that occur during dealloying. The STM can also quantify the surface diffusivity of the more noble element in the various dealloying environments. The research plan includes: (1) quantifying the in-situ time evolution of the full three-dimensional pore size distribution that is formed during selective dissolution as a function of electrochemical environment, applied voltage and alloy composition; (2) quantifying the coarsening kinetics of porous metals as a function of temperature, electrochemical environment, and melting point of the alloying elements; and (3) using STM to measure the evolution of island sizes developed during selective removal of surface atoms as a function of the electrochemical environment.%%%This research gives the first detailed morphological characterization of the effect of electrochemical environment on formation of porosity during dealloying. The research data provide a foundation for using selective dissolution to create high surface-area electrodes for amperometric sensors (with a specific interest in biomedical sensing). Nanoporous metals have tremendous potential in such diverse areas as high surface-area electrodes for electrochemical energy storage and conversion, biomedical sensor applications for disease diagnosis and treatment, and unique filtration applications in highly corrosive environments. ***
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Surface Chemical Effects on the Mechancial Properties of Solids: Combined Experimental and Large Scale Massively Parallel Atomic Level Simulations
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