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静水压力下MAlC(M = Ti,Zr)MAX相的第一性原理研究:面向工业应用的材料设计

First-principles study of MAlC (M = Ti, Zr) MAX phases under hydrostatic pressure: material design for industrial applications.

作者信息

Basak Ananya, Irfan Ahmad, Khatun Mst Asma, Rabbi M M, Roy Disha, Khan Mohammad Yasin Hayat, Ali M S, Rahman Md Ferdous, Rahman Md Atikur

机构信息

Department of Physics, Pabna University of Science and Technology Pabna-6600 Bangladesh

Central Labs, King Khalid University AlQura'a, P.O. Box 960 Abha Saudi Arabia.

出版信息

RSC Adv. 2025 Jul 31;15(33):27210-27237. doi: 10.1039/d5ra03843j. eCollection 2025 Jul 25.

Abstract

MAX phase compounds, combining metallic and ceramic properties, are ideal for high-pressure environments due to their excellent electrical and thermal conductivity, corrosion and oxidation resistance, and damage tolerance. This study investigates the structural, mechanical, electronic, thermal, and optical properties of MAlC (M = Ti, Zr) under hydrostatic pressure. Negative formation energies and positive phonon dispersion confirm thermodynamic and dynamic stability, while mechanical stability aligns with Born's criteria. Increasing stiffness constants and moduli (bulk, shear, Young's), along with Poisson's and Pugh's ratios, suggest enhanced mechanical performance. TiAlC and ZrAlC are brittle below 60 GPa and 40 GPa, respectively, but become ductile above these pressures. A rising machinability index with pressure supports industrial applicability. Anisotropy is confirmed 3D plots, and DOS analysis reveals metallic nature. Strong UV absorption and conductivity highlight their potential in UV-optical devices. Reflectivity above 60% and high IR reflectance suggest use in thermal coatings and solar heat management. Increasing Debye and melting temperatures under pressure further indicate their suitability for high-temperature applications. These findings support their use in extreme conditions such as aerospace, deep-sea exploration, and ultra-hard ceramic development.

摘要

MAX相化合物兼具金属和陶瓷特性,因其出色的导电性、导热性、抗腐蚀和抗氧化性以及损伤容限,非常适合高压环境。本研究调查了静水压力下MAlC(M = Ti,Zr)的结构、力学、电子、热学和光学性质。负的形成能和正的声子色散证实了其热力学和动力学稳定性,而力学稳定性符合玻恩准则。刚度常数和模量(体模量、剪切模量、杨氏模量)以及泊松比和普格比的增加表明力学性能增强。TiAlC和ZrAlC分别在60 GPa和40 GPa以下呈脆性,但在这些压力以上变得具有延展性。随着压力增加,可加工性指数上升,支持其工业适用性。通过三维图证实了各向异性,态密度分析揭示了其金属性质。强烈的紫外线吸收和导电性突出了它们在紫外光学器件中的潜力。高于60%的反射率和高红外反射率表明可用于热涂层和太阳能热管理。压力下德拜温度和熔点升高进一步表明它们适用于高温应用。这些发现支持它们在航空航天、深海勘探和超硬陶瓷开发等极端条件下的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2262/12322733/f3d1a82b0565/d5ra03843j-f1.jpg

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