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RELATIONSHIP OF MICRO-STRUCTURE MORPHOLOGY TO IMPEDANCE IN HETEROGENEOUS FUNCTIONAL MATERIALS

机译:微结构形态与异质功能材料中阻抗的关系

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In the present work, we are concerned with heterogeneous material systems that have multiple distinct materials and void phases, and associated interfaces, for which the geometric scale and specific morphology at the microano-level play an essential role in the global properties, functional behavior, and material system performance. Such materials are at the heart of revolutionary advances in devices that convert and store energy (e.g., batteries, fuel cells, solar cells, capacitors, and many electro-optical devices), and other membrane-based devices used in chemical and fuel processing, sequestration, and extraction. In recent years, advances in a variety of additive manufacturing methods and techniques have made it possible to design, control, and fabricate specific micro- or nano-structure to achieve prescriptive functional performance of the material systems and devices in which they appear. However, systematic multiphysics analysis methods properly set on field equations that represent the local details is not available, so that first-principles understandings and designs of those materials are not properly founded. Recently, the doe established an energy frontiers research center for physics based nanostructure design and fabrication of heterogeneous functional materials, called the HeteroFoaM center, to address this and related questions. The present paper presents some initial findings of part of that effort related specifically to morphology.For the present study, a finite element model (FEM) Was developed Using COMSOL MULTIPHYSICS to predict impedance behavior when the field equations are set on the local features of regular geometric micro-structures The results for are compared with experimental data obtained from impedance spectroscopy of single SOFC fuel cell elements. For the model, equivalent idealized geometric structures were assumed corresponding to the YSZ material morphology of thefuel cell. Continuously aligned pore structures were represented by rectangular extrusions and regular porosity was represented by geometric shapes such as circles, rectangles and triangles. For experimental data, fragments of a button cell were used with silver paste contacts on the electrodes. For the model, the geometric microstructure was varied by using different shapes i.e. circles, rectangles and triangles while keeping the total material quantity constant, and by using equivalent areas for each of the geometric shapes. Impedance response for the frequency range from lHz to 1MHz was obtained for both the models and the experiments. Observations and interpretations of morphology effects are presented.
机译:在当前的工作中,我们关注具有多种不同材料和空隙相以及相关界面的异质材料系统,在微观/纳米级上,几何尺寸和特定形态在整体性质,功能方面起着至关重要的作用。行为和材料系统性能。这些材料是转换和存储能量的设备(例如电池,燃料电池,太阳能电池,电容器和许多光电设备)以及化学和燃料加工中使用的其他基于膜的设备革命性进展的核心。隔离和提取。近年来,各种增材制造方法和技术的进步使得有可能设计,控制和制造特定的微结构或纳米结构,以实现其出现的材料系统和装置的规定功能性能。但是,尚无法在代表局部细节的场方程上正确设置系统的多物理场分析方法,因此无法正确建立对这些材料的第一性原理的理解和设计。最近,美国能源部建立了一个能源前沿研究中心,用于基于物理学的纳米结构设计和异质功能材料的制造,称为HeteroFoaM中心,以解决这一问题和相关问题。本文介绍了一些与形态学有关的部分努力的初步发现。 在本研究中,使用COMSOL MULTIPHYSICS开发了一个有限元模型(FEM),当将场方程设置在规则几何微观结构的局部特征上时,可以预测阻抗行为。将结果与从阻抗谱获得的实验数据进行了比较。单个SOFC燃料电池元件。对于该模型,假定等效的理想化几何结构对应于YSZ材料的形貌。 燃料电池。连续排列的孔结构以矩形挤压表示,规则的孔隙率以几何形状表示,例如圆形,矩形和三角形。对于实验数据,纽扣电池的碎片与电极上的银浆触点一起使用。对于该模型,通过使用不同的形状(即圆形,矩形和三角形),同时保持总材料量恒定,并通过为每个几何形状使用等效面积来改变几何微观结构。模型和实验均获得了从1Hz到1MHz频率范围内的阻抗响应。介绍了形态学效应的观察和解释。

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