Phase transition engineering for toughness improvement of Ta(C,N) coating: First-principles calculations

IF 3.8 3区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS
Y. F. Hu, Y. P. Zheng, J. Y. Wang, W. Zhai
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引用次数: 0

Abstract

The effect of nitrogen element solid solution on the toughness improvement of cubic-B1 Ta(C,N) coating and the associated phase transition process during tensile were investigated through first-principles calculations. The computational results exhibited that the solid solubility of nitrogen element in the cubic-B1 Ta(C,N) phase was up to 50 at.%. If nitrogen content was smaller than 30 at.%, Ta(C,N) showed Poisson's ratio lower than 0.26 and brittle fracture feature during tensile simulations. As for Ta(C,N) with nitrogen content in the range from 30 to 50 at.%, both Poisson's ratio larger than 0.26 and structure evolution during tensile signified their ductile characteristics, which monotonically rose with the increase of nitrogen content. The calculated maximum toughness of Ta(C50%N50%) was 384.3 GPa%, which was 92% larger than that of TaC. Structural analysis revealed that solid solution of nitrogen element enhanced distortion ability of bond length and angle, and transformed anisotropic distortion in TaC to the isotropic one in Ta(C,N), which led to phase transition from face-centered cubic to hexagonal close packed. It was found that the spatial distribution characteristics change of orbital hybridization from isotropy in TaC to anisotropy in Ta(C,N) was the underlying reason for phase transformation, which was even facilitated after loading tensile strain. This indicates that phase transition engineering motivated by orbital hybridization regulation is an effective routine to improve material toughness.

提高Ta(C,N)涂层韧性的相变工程:第一性原理计算
通过第一性原理计算,研究了氮元素固溶体对立方b1 Ta(C,N)涂层韧性提高的影响以及拉伸过程中相关的相变过程。计算结果表明,氮元素在立方- b1 Ta(C,N)相中的固溶度可达50 at.%。如果含氮量小于30at。%, Ta(C,N)在拉伸模拟中表现出泊松比小于0.26的脆性断裂特征。含氮量在30 ~ 50 at之间的Ta(C,N)。%时,泊松比大于0.26和拉伸过程中的组织演化均表现出其延性特征,且随含氮量的增加而单调上升。Ta(c50% ~ n50%)的最大韧性为384.3 GPa%,比TaC大92%。结构分析表明,氮元素的固溶增强了键长和键角的畸变能力,使TaC的各向异性畸变转变为Ta(C,N)的各向同性畸变,使相由面心立方向六方密排转变。发现轨道杂化的空间分布特征从TaC的各向同性转变为Ta(C,N)的各向异性是相变的根本原因,甚至在加载拉伸应变后更容易发生相变。这表明由轨道杂化调控驱动的相变工程是提高材料韧性的有效途径。
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来源期刊
Journal of the American Ceramic Society
Journal of the American Ceramic Society 工程技术-材料科学:硅酸盐
CiteScore
7.50
自引率
7.70%
发文量
590
审稿时长
2.1 months
期刊介绍: The Journal of the American Ceramic Society contains records of original research that provide insight into or describe the science of ceramic and glass materials and composites based on ceramics and glasses. These papers include reports on discovery, characterization, and analysis of new inorganic, non-metallic materials; synthesis methods; phase relationships; processing approaches; microstructure-property relationships; and functionalities. Of great interest are works that support understanding founded on fundamental principles using experimental, theoretical, or computational methods or combinations of those approaches. All the published papers must be of enduring value and relevant to the science of ceramics and glasses or composites based on those materials. Papers on fundamental ceramic and glass science are welcome including those in the following areas: Enabling materials for grand challenges[...] Materials design, selection, synthesis and processing methods[...] Characterization of compositions, structures, defects, and properties along with new methods [...] Mechanisms, Theory, Modeling, and Simulation[...] JACerS accepts submissions of full-length Articles reporting original research, in-depth Feature Articles, Reviews of the state-of-the-art with compelling analysis, and Rapid Communications which are short papers with sufficient novelty or impact to justify swift publication.
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