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非晶物质中的临界现象
引用本文:任景莉,于利萍,张李盈. 非晶物质中的临界现象[J]. 物理学报, 2017, 66(17): 176401-176401. DOI: 10.7498/aps.66.176401
作者姓名:任景莉  于利萍  张李盈
作者单位:郑州大学数学与统计学院, 郑州 450001
基金项目:国家自然科学基金(批准号:11271339)、河南省创新人才计划(批准号:164200510011)、河南省科技创新研究团队(批准号:17IRTSTHN007)、非线性力学国家重点实验室开放基金(批准号:LNM201710)和国家重点研发计划重点专项(批准号:2017YFB0702500)资助的课题.
摘    要:非晶态材料有着复杂的原子结构(短程有序、长程无序)和特殊的物理性质,其临界现象和相变问题一直受到学术界关注.非晶合金,又称为金属玻璃,是一种新型的非晶态材料,具有很高的强度和优异的弹性.从微观的角度来看,非晶合金可以看作是一个多粒子系统.临界现象的研究对认识和理解多粒子系统之间的相互作用有深刻的意义.本文主要讨论非晶合金中的临界现象,包括非晶合金从制备过程、微观结构到宏观的力学性能以及磁性方面存在的临界现象,并分析这些临界现象之间的内在联系,进而深入理解非晶合金的微观结构对其宏观性质的影响.这为认识非晶合金的形成本质,提高服役可靠性,探索具有实际应用价值的非晶合金提供理论依据.

关 键 词:非晶合金  临界现象  微观结构  相变
收稿时间:2017-05-08

Critical phenomena in amorphous materials
Ren Jing-Li,Yu Li-Ping,Zhang Li-Ying. Critical phenomena in amorphous materials[J]. Acta Physica Sinica, 2017, 66(17): 176401-176401. DOI: 10.7498/aps.66.176401
Authors:Ren Jing-Li  Yu Li-Ping  Zhang Li-Ying
Affiliation:School of Mathematics and Statistics, Zhengzhou University, Zhengzhou 450001, China
Abstract:Amorphous material usually exhibit a complex atomic structure including short-range order, long-range disorder and metastable state in thermodynamic, which is one of the existing states of matters. Amorphous alloy, also named metallic glass, is a new metallic material, and has a high strength, a good electromagnetic property, an excellent corrosionresistant and a high elasticity. The system of amorphous alloy can show some critical states and is a complicated system. In recent years, much atttentions have been paid to the researches of the phase transitions and critical phenomena of amorphous material. On a microscale, amorphous alloy can be regarded as a solid composed of many-particle systems. The investigation of the critical phenomena can significantly enhance the understanding of the interactions among these multi-particle systems. The structure of amorphous alloy is randomly and isotropic in macro performance, and ordered and anisotropic on a localized nanometer scale. The characteristics on different scales of amorphous alloy are not isolated. The structure of amorphous alloy determines the performance. The preparation process determines the nature of the microstructure. The microstructure is the internal cause dominating glass transition and deformation. Moreover, the effective cooling rate in preparation process of amorphous alloy affects the short-range rate of the amorphous phase. The nonperiodic short-range order plays a key role in the stability of amorphous phase. Furthermore, the glass transition and deformation of amorphous alloys are the responses to the external energy. The characteristics of the deformation process change with external condition. The external force can lead to the localized shear deformation and transformation between amorphous and liquid in the shear band. High temperature can cause a wide range of transformation from the amorphous solid to the liquid. So it is worth understanding in depth the basic principles of liquid and glass transition in order to prepare amorphous alloy in undercooled liquids. In this review article, we discuss the critical phenomena of amorphous alloys, which include the preparation process, the microstructure, the mechanical property and the electromagnetism. The correlation and the influence of microstructure on the macroscopic properties are analyzed. It will be helpful for understanding the nature of amorphous alloy, improving service reliability and exploring amorphous alloys with application values.
Keywords:amorphous alloys  critical behaviour  microstructure  phase transition
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