论文标题
三氯化铬的准粒子能量和激子效应:从二维到散装
Quasiparticle Energies and Excitonic Effects of Chromium Trichloride: from Two Dimensions to Bulk
论文作者
论文摘要
迄今为止,分层的范德华(VDW)磁性材料引起了重大的研究兴趣。在这项工作中,我们采用了第一原理多体扰动理论来计算原型VDW磁铁,三氯化铬(CRCL3)的激发态性能,涵盖了单层,双层和散装结构。与通常的非磁性VDW半导体不同,其中许多电子相互作用和激发态对维度敏感,许多电子相互作用始终得到增强,并占据了二维和体积CRCL3的准粒子能量和光学响应。电子孔(E-H)结合能可以在单层中达到3 eV,并且在散装中保持高达2 eV。由于自我能量校正和E-H结合能之间的取消效应,最低能量激子(光学间隙)几乎不受维度变化的影响。此外,对于具有相似E-H结合能的激子,其偶极振荡器的强度可能会差异几个数量级。您的分析表明,这种很大的差异来自复杂的激子波函数和带间横向过渡之间的独特干扰效应。最后,我们发现层间堆叠序列和磁耦合几乎不会改变crcl3的准粒子带隙和光吸收光谱。我们计算出的低能激子峰位置与可用的测量相一致。这些发现使人们深入了解了对多电子相互作用的理解以及VDW磁性材料中磁性和光激发之间的相互作用。
Layered van der Waals (vdW) magnetic materials have attracted significant research interest to date. In this work, we employ the first-principles many-body perturbation theory to calculate excited-state properties of a prototype vdW magnet, chromium trichloride (CrCl3), covering monolayer, bilayer, and bulk structures. Unlike usual non-magnetic vdW semiconductors, in which many-electron interactions and excited states are sensitive to dimensionality, many-electron interactions are always enhanced and dominate quasiparticle energies and optical responses of both two-dimensional and bulk CrCl3. The electron-hole (e-h) binding energy can reach 3 eV in monolayer and remains as high as 2 eV in bulk. Because of the cancellation effect between self-energy corrections and e-h binding energies, the lowest-energy exciton (optical gap) is almost not affected by the change of dimensionality. Besides, for the excitons with similar e-h binding energies, their dipole oscillator strength can differ by a few orders of magnitude.Our analysis shows that such a big difference is from a unique interference effect between complex exciton wavefunctions and interband transitions. Finally, we find that the interlayer stacking sequence and magnetic coupling barely change quasiparticle band gaps and optical absorption spectra of CrCl3. Our calculated low-energy exciton peak positions agree with available measurements. These findings give insight into the understanding of many-electron interactions and the interplay between magnetic orders and optical excitations in vdW magnetic materials.