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Practical applications of the chemical strain effect in ionic and mixed conductors

机译:化学应变效应在离子导体和混合导体中的实际应用

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The chemical strain effect in solids is the deviation from linear elasticity due to the association and dissociation of point defects. Although to date this effect has been observed and studied only in Ce_(0.8)Gd_(0.2)O_(1.9), one may expect that it will be found in other ionic and mixed conductors containing a large concentration of point defects. In this work, some practical applications of materials exhibiting the chemical strain effect are discussed. Based on the example of Ce_(0.8)Gd_(0.2)O_(1.9), mechanical structures built from these materials should exhibit exceptional mechanical stability and are therefore very attractive for use as components of solid oxide fuel cells (SOFC) or other devices subjected to large and frequent temperature variations. The ability of these materials to withstand large strain without accumulating large stress also makes them potentially useful as flexible elements in micro-electromechanical systems (MEMS).
机译:固体中的化学应变效应是由于点缺陷的缔合和解离而导致的线性弹性偏差。尽管迄今为止仅在Ce_(0.8)Gd_(0.2)O_(1.9)中观察到并研究了这种效应,但可以预期会在包含大量点缺陷的其他离子导体和混合导体中发现这种效应。在这项工作中,讨论了具有化学应变效应的材料的一些实际应用。根据Ce_(0.8)Gd_(0.2)O_(1.9)的示例,由这些材料制成的机械结构应表现出出色的机械稳定性,因此,非常适合用作固体氧化物燃料电池(SOFC)或其他受到污染的设备到大而频繁的温度变化。这些材料能够承受较大应变而不会累积大应力的能力也使它们有可能用作微机电系统(MEMS)中的柔性元件。

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