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Permeability of anodic alumina membranes with branched channels

机译:带有分支通道的阳极氧化铝膜的渗透性

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摘要

Mass-transport properties of anodic alumina membranes exploited in a number of technological areas are strongly affected by the real pore structure and arrangement of channels that can split or terminate during the anodization process. This paper focuses on the investigation of pore branching and rearrangement caused by voltage variation in the course of the anodic oxidation of aluminum. Gas-transport measurements were utilized for the quantitative determination of an effective through porosity of multilayer anodic alumina membranes with branched channels obtained by variation of anodization voltage. It was shown that on decrease of anodization voltage a branching of pores occurs, while an increase of anodization voltage leads to the termination of some of the pores with an increase in the diameter of others. Gas permeance measurements combined with electron microscopy unambiguously prove dead-end pore formation on voltage increase, while no pore merging appears. This generally affects any mass-transport properties and applications of anodic alumina membranes as the delivery of any species (e.g.ions, gas molecules, etc) through the blocked channels is impossible.
机译:阳极氧化铝膜在许多技术领域中的传质特性受阳极孔过程中可能发生分裂或终止的真实孔结构和通道排列的强烈影响。本文主要研究铝阳极氧化过程中电压变化引起的孔分支和重排。气体传输测量被用于定量确定具有通过改变阳极氧化电压而获得的分支通道的多层阳极氧化铝膜的有效通孔率。结果表明,在阳极氧化电压降低时,会出现孔的分支,而阳极氧化电压的增加会导致某些孔的终止,而其他孔的直径会增加。气体渗透率测量与电子显微镜相结合,清楚地证明了电压升高时会形成死孔,而没有出现孔合并现象。这通常会影响阳极氧化铝膜的任何传质和应用,因为不可能通过阻塞的通道传送任何种类的物质(例如离子,气体分子等)。

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