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纳米受限铁镍液体的自适应分层结构:液-液相转变的起源

Self-Adaptive Layering Structure of Nanoconfined Fe-Ni Liquids: Origin of the Liquid-Liquid Phase Transition.

作者信息

Liu Qingshui, Huang Jian, Fu Mengshuang, Li Zhichao, Zhao Ruopu, Tang Jifeng, Jiang Yanyan, Wu Weikang, Li Hui

机构信息

Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials, Ministry of Education, Shandong University, Jinan 250061, China.

Suzhou Institute of Shandong University, Suzhou 215123, People's Republic of China.

出版信息

ACS Omega. 2024 Oct 21;9(43):43616-43623. doi: 10.1021/acsomega.4c05651. eCollection 2024 Oct 29.

Abstract

Metallic liquids under confinement exhibit different properties compared to those of their corresponding bulk phases, such as miscibility, diffusion, and phase transitions. Unfortunately, the challenges in experimentally characterizing Fe-Ni liquids at the nanoscale and the high cost of first-principles simulations hindered the atom-level understanding that is necessary for controlling Fe-Ni liquids. Here, we report a comprehensive molecular dynamics study of the liquid Fe-Ni alloy confined within nanoslits. Driven by the slit size, the confined Fe-Ni liquid experiences the liquid-liquid phase transition (LLPT) that is characterized by layering transitions. Interestingly, during the LLPT, a transition liquid phase appears, separating two layering phases, which is accompanied by abnormal variations in density, potential energy, and pressure perpendicular to the wall. The Voronoi cluster analysis reveals a self-adaptive local structural evolution in confined Fe-Ni liquids during the LLPT. The effect of temperature, pressure, and composition on the LLPT is investigated. Based on the pressure-confinement phase diagram, the LLPT is mainly induced by confinement under high pressure, while under low pressure, the LLPT is mainly pressure-driven. Our research will stimulate more interest in the phase transition under confinement in a metallic system.

摘要

受限环境下的金属液体与其相应的体相相比呈现出不同的性质,如混溶性、扩散和相变。不幸的是,在纳米尺度上对铁镍液体进行实验表征面临挑战,且第一性原理模拟成本高昂,这阻碍了对控制铁镍液体所需的原子级理解。在此,我们报告了一项对限制在纳米狭缝内的液态铁镍合金进行的全面分子动力学研究。受狭缝尺寸驱动,受限的铁镍液体经历以分层转变为特征的液-液相转变(LLPT)。有趣的是,在LLPT过程中,出现了一个过渡液相,将两个分层相分隔开,同时伴随着垂直于壁面的密度、势能和压力的异常变化。Voronoi团簇分析揭示了受限铁镍液体在LLPT过程中的自适应局部结构演化。研究了温度、压力和成分对LLPT的影响。基于压力-限制相图,LLPT主要由高压下的限制诱导,而在低压下,LLPT主要由压力驱动。我们的研究将激发更多人对金属系统中受限环境下相变的兴趣。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/761f/11525739/9a237e45e149/ao4c05651_0001.jpg

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