论文标题
在晶体质感的N-烷基Anilino Squaraine薄膜中,聚焦电荷转移激子
Spotlight on Charge-Transfer Excitons in Crystalline Textured n-Alkyl Anilino Squaraine Thin Films
论文作者
论文摘要
用于光伏应用的原型N-烷基终止的Anilino Squaraines显示出绿色和深红色光谱范围内峰值的特征性双驼峰吸收特征。这些特征是由分子内Frenkel激子和分子间电荷转移激子的耦合产生的。对于具有N-己基(NHSQ)和N-辛基(NOSQ)末端烷基烷基链的化合物的晶体,纹理薄膜已获得适用于极化光谱微观镜检查。 NOSQ的此处释放的三斜晶体结构与已知的NHSQ晶体结构相似。因此,来自两种化合物的结晶物均具有两个不同的极化方向的相等明显的线性二色性。两个吸光度最大值之间极化角的差异不能仅通过单独的晶体结构的空间考虑来得出,但需要理论建模。使用基本的状态模型,发现观察到的极化行为取决于分子内Frenkel激子的相对贡献和分子间电荷转移激子对总过渡偶极矩。对于NHSQ和NOSQ,与分子内Frenkel激子相比,发现电荷转移激子对总过渡偶极矩的贡献很小。因此,净跃迁偶极矩很大程度上取决于分子内成分,从而导致极化角度之间的相对互相差异。最终,可以推导微纹理的微晶内部的分子比对,因此可以发现激发的状态过渡。
Prototypical n-alkyl terminated anilino squaraines for photovoltaic applications show characteristic double-hump absorption features peaking in the green and deep-red spectral range. These signatures result from coupling of an intramolecular Frenkel exciton and an intermolecular charge transfer exciton. Crystalline, textured thin films suitable for polarized spectro-microscopy have been obtained for compounds with n-hexyl (nHSQ) and n-octyl (nOSQ) terminal alkyl chains. The here released triclinic crystal structure of nOSQ is similar to the known nHSQ crystal structure. Consequently, crystallites from both compounds show equal pronounced linear dichroism with two distinct polarization directions. The difference in polarization angle between the two absorbance maxima cannot be derived by spatial considerations from the crystal structure alone but requires theoretical modeling. Using an essential state model, the observed polarization behavior was discovered to depend on the relative contributions of the intramolecular Frenkel exciton and the intermolecular charge transfer exciton to the total transition dipole moment. For both nHSQ and nOSQ, the contribution of the charge transfer exciton to the total transition dipole moment was found to be small compared to the intramolecular Frenkel exciton. Therefore, the net transition dipole moment is largely determined by the intramolecular component resulting in a relatively small mutual difference between the polarization angles. Ultimately, the molecular alignment within the micro-textured crystallites can be deduced and, with that, the excited state transitions can be spotted.