从制造到机械特性:探索高温应用中的高熵氧化物薄膜和涂层

Jun Yeop Lee, Wenjun Cai
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引用次数: 0

摘要

含有五个或五个以上阳离子的高熵氧化物(HEOs)因其巨大的可调成分空间、卓越的物理和机械性能、超强的热稳定性以及高温下的相逆性而受到广泛关注。这些特性使 HEOs 成为高温应用中结构组件和涂层的理想候选材料。虽然目前对 HEOs 的研究主要集中在了解加工与结构之间的关系上,但有关其机械性能的知识仍然十分匮乏,而这对其未来的高温应用至关重要。无论是块状还是涂层,高温氧化物的功效都取决于其在各种温度下的稳健机械性能,以确保结构的完整性、抗断裂性和对热应力的适应性。本综述简明扼要地综述了从加工技术到极端条件下的机械性能等方面的 HEO 研究最新进展。重点放在三个关键方面:(1)研究加工参数对 HEO 晶体结构的影响。(2) 分析晶体结构与机械性能之间的相互作用,阐明变形机制。(3) 研究在极端温度和压力下赫欧材料的力学行为。通过本综述,我们旨在阐明如何有效控制 HEOs 的独特结构和机械性能,为其未来在极端环境中的应用铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From fabrication to mechanical properties: exploring high-entropy oxide thin films and coatings for high-temperature applications
High-entropy oxides (HEOs) containing five or more cations have garnered significant attention recently due to their vastly tunable compositional space, along with their remarkable physical and mechanical properties, exceptional thermal stability, and phase reversibility at elevated temperatures. These characteristics position HEOs as promising candidates for structural components and coatings in high-temperature applications. While much of the ongoing research on HEOs centers around understanding processing-structure relationships, there remains a dearth of knowledge concerning their mechanical properties, crucial for their prospective high-temperature applications. Whether in bulk form or as coatings, the efficacy of HEOs hinges on robust mechanical properties across a spectrum of temperatures, to ensure structural integrity, fracture resistance, and resilience to thermal stress. This review offers a succinct synthesis of recent advancements in HEO research, spanning from processing techniques to mechanical behaviors under extreme conditions. Emphasis is placed on three key aspects: (1) Investigating the influence of processing parameters on HEO crystal structures. (2) Analyzing the interplay between crystal structure and mechanical properties, elucidating deformation mechanisms. (3) Examining the mechanical behavior of HEOs under extreme temperatures and pressures. Through this review, we aim to illuminate the effective control of HEOs’ unique structures and mechanical properties, paving the way for their future applications in extreme environments.
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