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SGER: Characterization of Surface Ionic Activity of Proton Conducting Membranes

SGER: Characterization of Surface Ionic Activity of Proton Conducting Membranes
SGER:质子传导膜表面离子活性的表征
批准号:
9909763
负责人:
Trung Nguyen
金额:
$3.97万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-08-15 至 2001-07-31

项目摘要

项目成果

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中文摘要
翻译
本计画将利用一种新型的扫描探针显微镜来研究质子传导膜的制备与预处理对质子传导膜表面离子与催化活性的影响。 PI正在开发的技术包括一个原子力显微镜,其中电路被修改为包括电压传感能力。 这种双模式扫描探针显微镜技术将被用来探测暴露于液态水和水蒸气的膜的外表面上和威尔斯的外表面内的离子簇的形貌。 先前已经使用扫描电化学显微镜进行了扫描膜表面的尝试。 该技术依赖于测量表面上的电化学反应产生的电流;因此,分辨率较低。 在所提出的方法中,PI将尝试测量由铂纳米探针接触离子簇产生的电势。 预计将有更高的灵敏度和更高的二维和三维分辨率。 如果可以测量离子簇的形貌,则可以量化膜预处理和制造过程对簇形成的影响。 对离子团簇行为的基本理解可能会导致燃料电池膜组件的改进。
英文摘要
This project will focus on using a novel scanning probe microscope to study the effects of membrane preparation and pretreatment on the surface ionic and catalytic activities of proton conducting membranes. The technique being developed by the PI consists of an atomic force microscope in which the circuit is modified to include voltage-sensing capability. This dual-mode scanning-probe microscopy technique will be used to probe the topography of ionic clusters on the outer surface and within wells of the outer surface of membranes exposed to both liquid water and water vapor. Previous attempts to scan membrane surfaces have been made using scanning electrochemical microscopy. This technique relies on measuring a current generated from an electrochemical reaction on the surface; consequently, the resolution has been low. In the proposed method, the PI will attempt to measure the potential resulting from a platinum nanoprobe contacting an ionic cluster. Higher sensitivity and higher two- and three-dimensional resolution is anticipated. If the topography of the ionic clusters can be measured, the effects of membrane pretreatment and manufacturing process on cluster formation could be quantified. Fundamental understanding of the behavior of ionic clusters could lead to improvements in fuel-cell membrane assemblies.
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