Department of Theoretical Chemistry and Biology, School of Biotechnology, Royal Institute of Technology, 10691 Stockholm, Sweden.
Department of Materials and Interfaces, Weizmann Institute of Science, Rehovoth 76100, Israel.
J Chem Phys. 2017 Jul 28;147(4):044301. doi: 10.1063/1.4993623.
We analyse the valence electronic structure of cobalt phthalocyanine (CoPc) by means of optimally tuning a range-separated hybrid functional. The tuning is performed by modifying both the amount of short-range exact exchange (α) included in the hybrid functional and the range-separation parameter (γ), with two strategies employed for finding the optimal γ for each α. The influence of these two parameters on the structural, electronic, and magnetic properties of CoPc is thoroughly investigated. The electronic structure is found to be very sensitive to the amount and range in which the exact exchange is included. The electronic structure obtained using the optimal parameters is compared to gas-phase photo-electron data and GW calculations, with the unoccupied states additionally compared with inverse photo-electron spectroscopy measurements. The calculated spectrum with tuned γ, determined for the optimal value of α = 0.1, yields a very good agreement with both experimental results and with GW calculations that well-reproduce the experimental data.
我们通过优化范围分离混合泛函来分析酞菁钴(CoPc)的价电子结构。通过修改混合泛函中包含的短程精确交换(α)的量和范围分离参数(γ)来进行调整,采用两种策略为每个α找到最佳的γ。彻底研究了这两个参数对 CoPc 的结构、电子和磁性性质的影响。发现电子结构对精确交换包含的量和范围非常敏感。与气相光电子数据和 GW 计算相比,使用最佳参数获得的电子结构,与未占据态另外与反光电子能谱测量相比。用调整后的γ计算的光谱,针对最佳的α=0.1 值确定,与实验结果和很好地再现实验数据的 GW 计算非常吻合。