Suppr超能文献

燃料电池电极材料的脱落和移动。

Drop detachment and motion on fuel cell electrode materials.

机构信息

Department of Chemical and Biological Engineering, Princeton University, Princeton, New Jersey 08544, United States.

出版信息

ACS Appl Mater Interfaces. 2012 Feb;4(2):761-71. doi: 10.1021/am201408t. Epub 2012 Jan 23.

Abstract

Liquid water is pushed through flow channels of fuel cells, where one surface is a porous carbon electrode made up of carbon fibers. Water drops grow on the fibrous carbon surface in the gas flow channel. The drops adhere to the superficial fiber surfaces but exhibit little penetration into the voids between the fibers. The fibrous surfaces are hydrophobic, but there is a substantial threshold force necessary to initiate water drop motion. Once the water drops begin to move, however, the adhesive force decreases and drops move with minimal friction, similar to motion on superhydrophobic materials. We report here studies of water wetting and water drop motion on typical porous carbon materials (carbon paper and carbon cloth) employed in fuel cells. The static coefficient of friction on these textured surfaces is comparable to that for smooth Teflon. But the dynamic coefficient of friction is several orders of magnitude smaller on the textured surfaces than on smooth Teflon. Carbon cloth displays a much smaller static contact angle hysteresis than carbon paper due to its two-scale roughness. The dynamic contact angle hysteresis for carbon paper is greatly reduced compared to the static contact angle hysteresis. Enhanced dynamic hydrophobicity is suggested to result from the extent to which a dynamic contact line can track topological heterogeneities of the liquid/solid interface.

摘要

液体水被推动通过燃料电池的流道,其中一个表面是由碳纤维组成的多孔碳电极。在气流通道中的纤维碳表面上会形成水滴。这些水滴附着在纤维的表面上,但很少渗透到纤维之间的空隙中。纤维表面是疏水的,但要使水滴开始运动,需要有一个相当大的起始力。然而,一旦水滴开始移动,粘合力就会减小,水滴会以最小的摩擦力移动,类似于在超疏水材料上的运动。我们在这里报告了在燃料电池中使用的典型多孔碳材料(碳纸和碳布)上的水润湿和水滴运动的研究。这些纹理表面的静态摩擦系数与光滑聚四氟乙烯相当。但在纹理表面上的动态摩擦系数比在光滑聚四氟乙烯上小几个数量级。由于其两尺度粗糙度,碳布的静态接触角滞后比碳纸小得多。与静态接触角滞后相比,碳纸的动态接触角滞后大大降低。增强的动态疏水性被认为是由于动态接触线能够跟踪液体/固体界面的拓扑异质性的程度。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验