论文标题
在散装和(001)的稳定性,电子和物理特性中阐明新联合Ti2znx(x = C,n)最大相位的稳定性
Unravelling the stability, electronic and physical properties in bulk and (001)-surfacesof newlysynthesized Ti2ZnX (X=C, N)MAX phases
论文作者
论文摘要
通过在A位置上添加后期过渡金属,并期望具有多种功能特性(例如磁性和催化)来扩展最大相位家族。在这里,我们介绍了有关新合成的TI2ZNX(X = C,N)相的相稳定性和物理性能的系统密度功能研究,与常规TI2ALX(X = C,N)(X = C,N)相比。与C相比,与C相比,N单位细胞尺寸减少了C Atoms nimensionis降低n时N的n尺寸。热力学,机械和动力学稳定性分别估计了形成能,弹性常数和声子分散体。 Ti2ZNN的弹性特性几乎是各向同性的,而Ti2ZNC的弹性特性完全是各向异性的。为了了解薄膜特征在TI2ZNX中,研究了具有(001)末端的平板的表面特性。 Ti2Znx散装和(001) - 曲面都表现出金属样电子结构。 TI-X和Ti-Zn原子之间存在很强的共价键。由于Ti和Zn原子之间异常的D-PSTATES杂交,因此在Fermi水平(EF)上产生了Additional状态。化学键合的各向异性在Ti-X和Ti-Zn Atoms之间的裂解能差证实。在这里,Ti(X)-001和Zn-001终止是稳定的表面,但是,在化学势方面,Zn-001终止是最有利的。
MAX phase family has been extended by the addition of late transition metals at the A-site with the expectation of diverse functional properties, such as magnetism and catalysis. Here, we present our systematic density functional investigation on the phase stability and physical properties of newly synthesized Ti2ZnX (X = C, N) phasesin comparison with conventional Ti2AlX (X = C, N).Due to smaller size of N as compared to C, the unit cell dimensionis reduced when C atoms are replaced by N atoms atthe X-site. The thermodynamic, mechanical and dynamical stabilities are validatedby estimating the formation energies, elastic constants and phonon dispersions, respectively. The elastic properties of Ti2ZnN are nearly isotropic while those of Ti2ZnC are completely anisotropic. To understand the thin-film characteristicsin Ti2ZnX, the surface properties with (001)-terminated slabs are investigated. Both Ti2ZnX bulk and (001)-surfaces exhibit metal-like electronic structure. There is a strong covalent bonding between Ti-X and Ti-Zn atoms.Additional states are generated at the Fermi level (EF) due to the unusual d-pstates hybridization between Ti and Zn atoms.The anisotropy in chemical bonding is confirmed by the cleavage energy difference between Ti-X and Ti-Zn atoms. Here,Ti(X)-001 and Zn-001 terminations are stable surfaces, however, in terms of chemical potentials, Zn-001 termination is the most favorable.