利用动态氢气泡模板制造独立多孔金属层

IF 4.3 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY Advanced Materials Interfaces Pub Date : 2024-04-25 DOI:10.1002/admi.202400052
Adrian Mularczyk, Daniel Niblett, Adam Wijpkema, Marc P. F. H. L. van Maris, Antoni Forner-Cuenca
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引用次数: 0

摘要

多孔电极的三维结构(即微结构)决定着燃料电池、电解和电池等新兴电化学技术的性能。维持高效率的电化学反应和对流扩散质量传输非常复杂,因此需要寻找具有多模态孔径分布和孔径梯度的复杂微结构。本文介绍了一种新的多孔金属层合成路线,它结合了碳结构的特点(如孔径、孔隙率)和金属的特性(如可回收性、导电性)。在动态氢气泡模板法的基础上,通过引入中间层和优化合成参数,设计出一种利用电化学流动池制造独立薄层的新方法。制造出的机械稳定层厚度从 ≈50 微米到 ≈200 微米不等,由多孔树枝状结构组成,排列成由较大孔隙组成的血管网络,半径梯度从材料底部的 ≈5 微米到顶部的 ≈36 微米不等。利用 X 射线层析成像数据对其形态进行了分析,模拟了作为液体填充函数的材料扩散传输,并与最先进的碳纤维电极进行了比较,结果表明其传质性能明显更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Manufacturing Free-Standing, Porous Metallic Layers with Dynamic Hydrogen Bubble Templating

The 3D structure (i.e., microstructure) of porous electrodes governs the performance of emerging electrochemical technologies such as fuel cells, electrolysis, and batteries. Sustaining electrochemical reactions and convective-diffusive mass transport at high efficiency is complex and motivates the search for sophisticated microstructures with multimodal pore size distributions and pore size gradients. Here a new synthesis route for porous, metallic layers is presented that combines the characteristics of carbon structures (i.e., pore size, porosity) with the properties of metals (i.e., recyclability, conductivity). Building on the method of dynamic hydrogen bubble templating, a novel approach is engineered to manufacture thin, free-standing layers using an electrochemical flow cell through the introduction of an intermediate layer and optimization of the synthesis parameters. Mechanically stable layers are created with thicknesses ranging from ≈50 to ≈200 µm comprising porous, dendritic structures, arranged to form a vascular network of larger pores with a gradient in radii from ≈5 µm at the bottom and up to ≈36 µm at the top of the material. Using X-ray tomographic data, the morphology is analyzed, and the diffusive transport through the material as a function of liquid filling is simulated and compared to state-of-the-art carbon fiber-based electrodes, showing significantly higher mass transfer properties.

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来源期刊
Advanced Materials Interfaces
Advanced Materials Interfaces CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.40
自引率
5.60%
发文量
1174
审稿时长
1.3 months
期刊介绍: Advanced Materials Interfaces publishes top-level research on interface technologies and effects. Considering any interface formed between solids, liquids, and gases, the journal ensures an interdisciplinary blend of physics, chemistry, materials science, and life sciences. Advanced Materials Interfaces was launched in 2014 and received an Impact Factor of 4.834 in 2018. The scope of Advanced Materials Interfaces is dedicated to interfaces and surfaces that play an essential role in virtually all materials and devices. Physics, chemistry, materials science and life sciences blend to encourage new, cross-pollinating ideas, which will drive forward our understanding of the processes at the interface. Advanced Materials Interfaces covers all topics in interface-related research: Oil / water separation, Applications of nanostructured materials, 2D materials and heterostructures, Surfaces and interfaces in organic electronic devices, Catalysis and membranes, Self-assembly and nanopatterned surfaces, Composite and coating materials, Biointerfaces for technical and medical applications. Advanced Materials Interfaces provides a forum for topics on surface and interface science with a wide choice of formats: Reviews, Full Papers, and Communications, as well as Progress Reports and Research News.
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