Jiang Kai, Cui Anyang, Shao Sen, Feng Jiajia, Dong Hongliang, Chen Bin, Wang Yanchao, Hu Zhigao, Chu Junhao
Technical Center for Multifunctional Magneto-Optical Spectroscopy (Shanghai), Engineering Research Center of Nanophotonics & Advanced Instrument (Ministry of Education), Department of Materials, School of Physics and Electronic Science, East China Normal University, Shanghai 200241, China.
State Key Laboratory of Superhard Materials & International Center for Computational Method and Software, Jilin University, Changchun 130012, China.
J Phys Chem Lett. 2020 Sep 3;11(17):7342-7349. doi: 10.1021/acs.jpclett.0c01813. Epub 2020 Aug 24.
The frequency shifts and lattice dynamics to unveil the vibrational properties of platinum diselenide (PtSe) are investigated using pressure-dependent polarized Raman scattering at room temperature up to 25 GPa. The two phonon modes E and A display similar hardening trends; both the Raman peak positions and full widths at half-maximum have distinct mutation phenomena under high pressure. Especially, the split E mode at 4.3 GPa confirms the change of the lattice symmetry. With the aid of the first-principles calculations, a new pressure stabilization structure 2/ of PtSe has been found to be in good agreement with experiments. The band structures calculations reveal that the new phase is a novel type-I Dirac semimetal. The results demonstrate that the pressure-dependent Raman spectra combined with theoretical predictions may open a new window for searching and controlling the phase structure and Dirac cones of two-dimensional materials.
利用室温下高达25 GPa的压力依赖偏振拉曼散射,研究了揭示二硒化铂(PtSe₂)振动特性的频移和晶格动力学。两种声子模式E和A显示出相似的硬化趋势;拉曼峰位置和半高宽在高压下都有明显的突变现象。特别是,在4.3 GPa时分裂的E模式证实了晶格对称性的变化。借助第一性原理计算,发现了一种新的PtSe₂压力稳定结构2H,与实验结果吻合良好。能带结构计算表明,新相是一种新型的I型狄拉克半金属。结果表明,压力依赖拉曼光谱与理论预测相结合,可能为搜索和控制二维材料的相结构和狄拉克锥打开一扇新窗口。