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Ideal strength on clusters from first principles: the Ti-13 case

机译:首要原则上的理想群集强度:Ti-13外壳

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The mechanical behavior of a Ti-13 cluster, based on total energy mechanical quantum calculations is studied. The cluster geometry has been optimized and good agreement with previous reports has been found. Axial strain is applied along one of the principal axes and the changes on the energetic and vibrational properties of the system are followed. To characterize the cluster stability as a function of strain, vibrational frequencies and total energy have been calculated, to obtain the cluster maximum load tolerance for compression (C) and tensile (T). If the maximum load is defined through a vibrational instability, it happens to be two and half, and three times larger than when the maximum total energy is considered (C and T respectively). As a result of the induced strain along of the C-5 symmetry element, the cluster changes its point group symmetry from I-h to D-5d, with an energy difference of 1.17 eV (for compression) and 0.33 eV (for tension) with respect to the ground state geometry. The electronic changes are also characterized, as function of the strain, by following the modifications of the highest occupied molecular orbital (HOMO), the lowest unoccupied molecular orbital (LUMO) and changes on the total atomic population.
机译:基于总能力学量子计算,研究了Ti-13团簇的力学行为。优化了群集的几何形状,并发现与以前的报告有很好的一致性。沿主轴线之一施加轴向应变,并跟踪系统的能量和振动特性的变化。为了将簇的稳定性表征为应变的函数,已经计算了振动频率和总能量,以获得簇的最大载荷承受力(C)和拉伸(T)。如果通过振动不稳定性定义最大负载,则该负载恰好是考虑最大总能量(分别为C和T)时的两倍半和三倍。由于沿C-5对称元素产生了应变,因此该簇将其点组对称性从Ih更改为D-5d,相对于能量的能量差为1.17 eV(用于压缩)和0.33 eV(用于拉伸)。到基态几何。通过改变最高占据分子轨道(HOMO),最低未占据分子轨道(LUMO)和总原子数的变化,还可以根据应变来表征电子变化。

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