论文标题
2D分子晶体中的平面内和平面外激体耦合
In-Plane and Out-of-Plane Excitonic Coupling in 2D Molecular Crystals
论文作者
论文摘要
在基本的光体物理学和各种应用中,例如能量收集,开关电子设备和显示设备,了解低维分子固体中分子激子的性质至关重要。尽管如此,分子激子及其过渡偶极子的空间演化尚未以分子长度尺度的精确捕获。在这里,我们显示了二维(2D)Perylene-3、4、9、10-四羧基苯二氢类腺(PTCDA)晶体组装的面板内和面外激体演化。用极化分辨的光谱和电子衍射方法确定具有两个herringbone基碱基分子的方向的完整晶格常数。在单层的真正2D极限中,Kasha型内乘偶联的两次Frenkel排放davydov-spliT显示出随温度降低的能量反演,从而增强了激子相干性。随着厚度的增加,由于与Frenkel状态混合,新出现的电荷转移激子的过渡偶极矩会重新定位。 2D分子激子的当前空间解剖结构将激发低维分子系统的更深入的理解和开创性应用。
Understanding the nature of molecular excitons in low-dimensional molecular solids is of paramount importance in fundamental photophysics and various applications such as energy harvesting, switching electronics and display devices. Despite this, the spatial evolution of molecular excitons and their transition dipoles have not been captured in the precision of molecular length scales. Here we show in-plane and out-of-plane excitonic evolution in quasilayered two-dimensional (2D) perylene-3, 4, 9, 10-tetracarboxylic dianhydride (PTCDA) crystals assembly-grown on hexagonal boron nitride (BN) crystals. Complete lattice constants with orientations of two herringbone-configured basis molecules are determined with polarization-resolved spectroscopy and electron diffraction methods. In the truly 2D limit of single layers, two Frenkel emissions Davydov-split by Kasha-type intralayer coupling exhibit energy inversion with decreasing temperature, which enhances excitonic coherence. As the thickness increases, the transition dipole moments of newly emerging charge transfer excitons are reoriented because of mixing with the Frenkel states. The current spatial anatomy of 2D molecular excitons will inspire a deeper understanding and groundbreaking applications of low-dimensional molecular systems.