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非晶态合金与氢相互作用的研究进展
引用本文:林怀俊,朱云峰,刘雅娜,李李泉,朱敏. 非晶态合金与氢相互作用的研究进展[J]. 物理学报, 2017, 66(17): 176105-176105. DOI: 10.7498/aps.66.176105
作者姓名:林怀俊  朱云峰  刘雅娜  李李泉  朱敏
作者单位:1. 暨南大学, 先进耐磨蚀及功能材料研究院, 广州 510632;2. 南京工业大学材料科学与工程学院, 南京 210009;3. 华南理工大学材料科学与工程学院, 广州 510640
基金项目:国家自然科学基金(批准号:51601090,51571112,51471087,51621001)资助的课题.
摘    要:非晶态合金在力学性能、耐磨耐蚀性、磁性等方面比传统晶态合金具有显著优势,是一类有优良应用前景的新型结构与功能材料.非晶态合金与氢相互作用可以产生很多有趣的物理化学现象和应用.本文从物理基础和材料应用两个方面评述非晶态合金和氢相互作用的研究进展,在物理基础研究方面,从氢在非晶态合金中的存在状态出发,讨论氢在非晶态合金中的溶解、分布、占位和扩散等相关物理问题,进而分析氢对非晶态合金的热稳定性、磁性、内耗、氢脆等的影响.在材料应用研究方面,对非晶态储氢合金、非晶态合金氢功能膜、吸氢改善非晶态合金的塑性和玻璃形成能力、氢致非晶化、利用非晶态合金制备纳米储氢材料等方面的研究进展进行评述.最后总结并展望有关非晶态合金与氢相互作用的研究和应用.

关 键 词:非晶态合金    储氢  氢致相变
收稿时间:2017-05-02

Research progress of interactions between amorphous alloys and hydrogen
Lin Huai-Jun,Zhu Yun-Feng,Liu Ya-Na,Li Li-Quan,Zhu Min. Research progress of interactions between amorphous alloys and hydrogen[J]. Acta Physica Sinica, 2017, 66(17): 176105-176105. DOI: 10.7498/aps.66.176105
Authors:Lin Huai-Jun  Zhu Yun-Feng  Liu Ya-Na  Li Li-Quan  Zhu Min
Affiliation:1. Institute of Advanced Wear & Corrosion Resistant and Functional Materials, Jinan University, Guangzhou 510632, China;2. College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, China;3. School of Materials Science and Engineering, South China University of Technology, Guangzhou 510640, China
Abstract:Amorphous alloys are a group of novel mechanical and functional materials that possess remarkably improved properties, such as mechanical property, wear property, anti-corrosion property, magnetic property and catalytic property, compared with those of their crystalline counterparts. The interactions between amorphous alloys and hydrogen can lead to various interesting physical and chemical phenomena, and also important applications. Typically, some amorphous alloys can store more hydrogen with faster kinetics than their crystalline counterparts due to the disordered atomic structures, which make them promising candidates for hydrogen storage. Hydrogen induced optical transformation in amorphous alloy film with thickness on a nanoscale makes them suitable for developing optical switchable windows. Hydrogen could be used as a sensitive probe to study the atomic structures of amorphous alloys. Amorphous alloys, whose structures are similar to defects in crystalline alloys (vacancies, dislocations, boundaries, ect.), are a group of suitable objects to study the interactions between hydrogen and defects. Amorphous alloys are also promising membranes materials for industrial hydrogen gas purification. Micro-alloying by hydrogenation could enhance the plasticity and glass-forming ability of amorphous alloy.
In this review, recent research progress of interactions between amorphous alloys and hydrogen are summarized from two main aspects: fundamental research and practical applications. In the aspect of fundamental research, we firstly review the recent study on hydrogen in the amorphous alloy, including the hydrogen concentration and distribution, hydrogen occupancy type and geometric size, hydrogen diffusion and thermodynamics and other relevant physical and chemical issues. Secondly, the studies on the effects of hydrogenation on thermal stability, magnetic property and internal friction of amorphous alloys, together with some discussion on the corresponding mechanisms are summarized. Thirdly, hydrogen embrittlement of amorphous alloy and the corresponding prevention techniques, together with the studies of the interactions between hydrogen and defects in crystalline materials such as vacancies, dislocations and boundaries in material, are also involved. In the aspect of practical applications, we firstly review recent advances in amorphous hydrogen storage alloys, focusing on transition metal based amorphous alloys and Mg based alloys. Secondly, amorphous alloy films for hydrogen purification, hydrogen sensors and optical switchable windows are reviewed. Thirdly, some positive influences introduced by hydrogenation on amorphous alloys are discussed, typically on enhancing plasticity and glass-forming ability. Besides the above, hydrogen induced amorphization on crystalline alloy, the use of amorphous alloy for preparing nanocrystalline hydrogen storage materials, and using hydrogenation to crack bulk amorphous alloys to produce amorphous alloys powders are also discussed. In the last section of this review, we try to give our own viewpoint of the future perspectives of relevant researches and applications of interactions between hydrogen and amorphous alloys.
Keywords:amorphous alloys  hydrogen  hydrogen storage  hydrogen-induced phase transformation
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