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Hydrogen in Metals: Microstructural Aspects

机译:金属中的氢:微观结构

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Metal-hydrogen (M-H) systems are interesting from both a theoretical and a practical point of view. M-H systems are utilized for energy-storage systems, in sensor applications, and in catalysis. These systems are often exploited as models for studying basic material properties, especially when the size of these systems is small and nonbulk-like contributions become dominant. Surfaces, nanocrystals, vacancy-and dislocation-rich materials, thin films, multilayers, and clusters as systems of major interest are addressed in this review. We show that the hydrogen solubility of M-H systems is strongly affected by the morphology and microstructure of and the stress between regions of different hydrogen concentration. For small-sized systems, surface-or interface-related sites become important and change the overall solubility as well as the phase boundaries of M-H systems. In thin films deposited on stiff substrates, compressive stresses evolve during hydrogen loading because the films are effectively clamped to substrates. These stresses are in the GPa range and strongly depend on microstructure. Nanoparticles even change their crystallographic structure, which results in completely new phases.
机译:从理论和实践的角度来看,金属氢(M-H)系统都很有趣。 M-H系统用于储能系统,传感器应用和催化。这些系统通常被用作研究基本材料特性的模型,尤其是当这些系统的尺寸较小且非散装样的成分占主导地位时。本文主要讨论了表面,纳米晶体,空位和位错丰富的材料,薄膜,多层和簇作为主要关注的系统。我们表明,M-H系统的氢溶解度受不同氢浓度区域的形态和微观结构以及应力之间的强烈影响。对于小型系统,与表面或界面有关的位置变得很重要,并且会改变M-H系统的总体溶解度以及相界。在沉积在硬质基材上的薄膜中,由于氢被有效地夹持在基材上,因此在氢气加载过程中会产生压缩应力。这些应力在GPa范围内,在很大程度上取决于微观结构。纳米粒子甚至会改变其晶体结构,从而产生全新的相。

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